WO2004034084A1 - Bistatic laser radar apparatus - Google Patents

Bistatic laser radar apparatus Download PDF

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Publication number
WO2004034084A1
WO2004034084A1 PCT/GB2003/004408 GB0304408W WO2004034084A1 WO 2004034084 A1 WO2004034084 A1 WO 2004034084A1 GB 0304408 W GB0304408 W GB 0304408W WO 2004034084 A1 WO2004034084 A1 WO 2004034084A1
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WO
WIPO (PCT)
Prior art keywords
receive
transmit
focus
optical arrangement
optical
Prior art date
Application number
PCT/GB2003/004408
Other languages
French (fr)
Inventor
Michael Harris
Christopher Hill
Andrew Charles Lewin
Original Assignee
Qinetiq Limited
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Qinetiq Limited filed Critical Qinetiq Limited
Priority to AU2003269271A priority Critical patent/AU2003269271A1/en
Priority to US10/529,055 priority patent/US8422000B2/en
Priority to DE60310107T priority patent/DE60310107T2/en
Priority to EP03751049A priority patent/EP1549974B1/en
Priority to JP2004542658A priority patent/JP2006502401A/en
Publication of WO2004034084A1 publication Critical patent/WO2004034084A1/en

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S7/00Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
    • G01S7/48Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S17/00
    • G01S7/481Constructional features, e.g. arrangements of optical elements
    • G01S7/4818Constructional features, e.g. arrangements of optical elements using optical fibres
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S17/00Systems using the reflection or reradiation of electromagnetic waves other than radio waves, e.g. lidar systems
    • G01S17/003Bistatic lidar systems; Multistatic lidar systems
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S7/00Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
    • G01S7/48Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S17/00
    • G01S7/481Constructional features, e.g. arrangements of optical elements
    • G01S7/4811Constructional features, e.g. arrangements of optical elements common to transmitter and receiver
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S7/00Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
    • G01S7/48Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S17/00
    • G01S7/497Means for monitoring or calibrating
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S17/00Systems using the reflection or reradiation of electromagnetic waves other than radio waves, e.g. lidar systems
    • G01S17/02Systems using the reflection of electromagnetic waves other than radio waves
    • G01S17/50Systems of measurement based on relative movement of target
    • G01S17/58Velocity or trajectory determination systems; Sense-of-movement determination systems

Definitions

  • This invention relates to laser radar (lidar) apparatus and more particularly to bistatic coherent laser radar (CLR) apparatus.
  • Lidar devices are well known, and have been used for a variety of purposes for many years.
  • the basic principle of lidar is to direct a laser beam to a remote target and to detect the returned signal. Modulation of the amplitude of the transmitted laser beam allows simple range information to be determined.
  • CLR coherent laser radar
  • CLR coherent laser radar
  • DIAL Differential absorption lidar
  • laser light of two wavelengths is transmitted to a target and the difference in absorption of the first and second wavelengths is used to provide a measure of the molecular concentration of a particular gas species.
  • CLR devices have been widely used for velocimetry measurements of both soft and hard targets.
  • CLR vibrometry has been used to measure the vibration characteristics of hard targets such as engine casings.
  • CLR has also been used for Doppler wind-speed measurements.
  • the returned signal arises from back-scatter of the transmitted laser beam off small particles (aerosols) such as dust and water droplets.
  • Doppler wind speed measurements have been shown to be useful in a wide range of applications including meteorology, aircraft true airspeed, and detection of aircraft wake vortices.
  • Measurement of the Doppler frequency shift to a high accuracy is typically achieved in CLR devices by beating (heterodyning) the return signal with a stable local- oscillator beam, usually derived from the same laser as the transmit beam.
  • a stable local- oscillator beam usually derived from the same laser as the transmit beam.
  • An example of an optical fibre based CLR system is described in Karlsson et al, Applied Optics, Vol. 39, No.21, 20 July 2000. It is possible to broadly categorise lidar systems as being monostatic or bistatic. Monostatic lidar systems are so called because they have common transmit and receive optics. Bistatic lidar systems derive their name from having separate transmit and receive optics.
  • bistatic CLR systems In contrast to monostatic systems, bistatic CLR systems have been found to be well suited to longer range vibrometry and some wind-speed measurements.
  • the non- parallel transmit and receive beams can be arranged to intersect at a certain point thereby accurately defining a probe volume (e.g. an area in space or the surface of a hard target).
  • a probe volume e.g. an area in space or the surface of a hard target.
  • the transmitted and received beam foci must coincide with the location of beam intersection. This is because the transmit and receive optics must be separately focused and also adjusted in angle (i.e. "squinted") to ensure intersection of focused receive and transmit beams at the desired range.
  • receive beam is used to denote the region from which any returned light will be directed to the detector. In other words the receive beam is not a beam of photons, but a pseudo or virtual beam that defines the area from which light is received by the system.
  • a bistatic laser radar device comprises a transmit channel for forming a focused transmit beam, and a receive channel for forming a focused receive beam, wherein the device is arranged such that the focus of the transmit beam and the focus of the receive beam fall on a common axis when focused to a distance within the operable distance range of the device.
  • the present invention thus provides a bistatic lidar device in which squint is adjusted in a predetermined manner as the focus of the transmit and receive beams are varied. This allows, over the required distance range at which the device operates, the foci of the transmit and receive beams to intersect.
  • the location of the transmit beam focus position will trace a first axis over the operable distance of the device.
  • the receive beam focus position will trace a second axis as its focus position is changed within the operable distance range of the device.
  • the present invention ensure that the first axis and the second axis are substantially coincident within the operable range of the device; i.e. the foci of the transmit beam and the receive beam fall along a common axis.
  • the common axis may, or may not, be linear depending on the exact geometry employed.
  • device performance is optimised when the foci of the transmit and receive beams intersect at the desired remote target.
  • An advantage of the present invention over prior art bistatic lidar devices is thus the removal of the requirement to perform a separate squint adjustment step whenever the focus of the transmit and receive beams is altered.
  • the transmit channel comprises a first optical arrangement configured to form the focused transmit beam and having at least one lens.
  • the first optical arrangement may be a single lens or may comprise a telescopic lens system.
  • laser radiation is passed to the first optical arrangement via a transmit optical fibre cable.
  • the focus of the transmit beam is adjustable by variation of the relative position of the first optical arrangement with respect to the exit aperture of the transmit optical fibre cable.
  • the fibre exit aperture is linearly translatable with respect to the first optical arrangement.
  • the fibre optic cable end i.e. the exit aperture
  • a fixed first optical arrangement e.g. a lens
  • the receive channel comprises a second optical arrangement configured to form the focused receive beam and having at least one lens.
  • the second optical arrangement is preferably configured to couple received radiation in to a receive optical fibre cable.
  • the focus of the receive beam is adjustable by variation of the relative position of the second optical arrangement with respect to the entry aperture of the receive optical fibre
  • the fibre entry aperture is linearly translatable with respect to the second optical arrangement.
  • the fibre optic cable end i.e. the entry aperture
  • a fixed second optical arrangement e.g. a lens
  • the exit aperture of the transmit optical fibre is linearly translatable along the optical axis of the first optical arrangement
  • the entry aperture of the receive optical fibre is linearly translatable along an axis arranged at a predetermined angle to the optical axis of the second optical arrangement.
  • the predetermined angle is calculated from the inverse tangent of the ratio of the separation of the transmit channel and receive channel to the focal length of the optical arrangement. A detailed description of how the predetermined angle is calculated is described below with reference to figure 3.
  • the device may further comprise at least one additional receive channel.
  • a lidar system having two or more receive channels.
  • the laser speckle pattern may produce reflections having an intensity that varies significantly with the angle of observation.
  • a single receive channel could thus be located in a null region and only receive a small return signal.
  • the two or more returned signals can be combined (e.g. averaged in some way) or the higher intensity signal could be used to provide the required information.
  • the at least one additional receive channel provides at least one additional receive beam and the focus of the at least one additional receive beam is arranged to intersect the focus of the transmit beam within the operable distance range of the device.
  • the device configured to interact with a distributed (soft) target.
  • the target could be a volume of air and wind speed measurements could be extracted from the device.
  • the device may advantageously be configured to interact with a hard target.
  • the device may be used, for example, in vibrometry. For example, vibrations of machinery could be monitored in order to identify the onset of failure.
  • the transmit beam is formed from radiation having a wavelength in the region of 1.55 ⁇ m.
  • the device may, of course, be operated using radiation of any wavelength (e.g. infrared, visible, UV etc).
  • figure 1 demonstrates the focus and squint properties of a bistatic lidar
  • figure 2 shows a technique for focusing and squinting an all fibre lidar
  • figure 3 shows the geometry of a bistatic lidar
  • FIG 4 illustrates a bistatic lidar according to the present invention.
  • the transmitter 2 and receiver 4 of a bistatic lidar device are shown.
  • the transmitter is configured to transmit a laser beam 6 that is focused on a probe volume 8.
  • the receiver 4 is configured to be focused on the same probe volume 8; in other words the so-called receive beam 10 of the receiver is also focused on the probe volume 8.
  • the receiver 4 is tilted away from the z-direction by an angle ⁇ so that the focus of the receive beam 10 intersects the focus of the laser beam 6 at the probe volume 8.
  • the system of figure la thus shows a properly aligned bistatic lidar.
  • the foci of the beams from the transmitter and receiver are co-incident at the probe volume 8.
  • Figure lb illustrates the effect of altering only the foci of the transmitter and receiver of the lidar system of figure la. It can be seen that although the range to the focus (R) of the transmitter and receiver is shortened, the return signal can only be derived from the region of intersection 12. This reduces the sensitivity of the system.
  • Figure 1 illustrates why both the focus and the squint of a bistatic system must be carefully adjusted so as to define the required probe volume.
  • WO01/35117 describes a technique that has been developed to enable accurate alignment of the transmit and receive beam at a desired probe volume. The method of WO01/35117 involves detaching a section of the receiver optics, and directing a laser beam down the receiver so that a "real" receive beam is formed that precisely matches the spatial light mode into which light must be scattered in order to be detected by the receiver. The receiver and transmitter can then be focused and squinted so that the "real" receive beam and transmit beam intersect and are focused on the desired probe volume.
  • FIG 2 a typical prior art method for varying the focus and squint of a fibre based bistatic lidar apparatus is shown.
  • Figure 2a illustrates how a beam of laser light 20 emitted from a fibre end 22 can be focused to a point 24 by a lens 26.
  • Figure 2b shows how axial movement (i.e. along the z-axis in figure 2) of the fibre toward the lens can increase the range at which the laser beam is focused.
  • Figure 2c demonstrates how lateral movement of the fibre end with respect to the lens can also provide a lateral movement of the focal point. Control of such lateral movement permits the required amount of squint to be introduced.
  • the required lateral and axial translations can be provided by separate manual (e.g. micrometer) or automated (e.g. motorised translation stage) means.
  • the requirement to separately adjust the focus and squint of the system to ensure optimal overlap of the transmit beam and the receive beam on the target adds complexity to the system.
  • a transmit lens 40 is laterally separated from a receive lens 42 by a distance S.
  • the optical axes of the transmit and receive lenses are both aligned along the z-axis.
  • Each lens has a focal length F, and a remote target T is located at a range R from the lenses.
  • a first fibre end 44 is located a distance F+Z from the transmit lens 40, and a second fibre end 46 is located a distance F+Z from the receive lens 42. To provide squint, the second fibre end 46 is located a distance X away from the optical axis of the receive lens 42.
  • the minimum range of the system is 1.5m.
  • the present invention lies in the realisation that both X and Z vary with the inverse of the range (R).
  • R the range
  • the angle at which a linear adjustment of the fibre end would result in both the desired focus and squint change
  • Equation (6) thus starts to break down when the range at which the beams are focused becomes comparable with the focal length.
  • the minimum range of operation of the system i.e. the range where the loss is greater than 3dB is given by;
  • a beam of radius 1.8cm at the exit aperture having a wavelength of 1.55 ⁇ m would thus provide a squint error less than 3dB for all ranges greater than about ten metres.
  • the scheme would normally be implemented with zero squint on the transmit beam, and with the receive fibre mounted on a translation stage aligned diagonally to the optical axis of the receive lens.
  • the T and R modes can be equally squinted in opposing directions by half the amount in the preceding version. In each of these methods, the number of translation stages is reduced from three (two focus and one squint) to two (one focus and one focus/squint, or two focus/squint).
  • the benefits of the present invention are increased when more than one receiver aperture is employed; for example in a dual-receiver or multiple receiver system.
  • the bistatic lidar system comprises a transmit channel 60 and a receive channel 62.
  • the transmit channel 60 comprises a first fibre end 64 mounted on a first linear translation stage 66.
  • a first lens 68 is provided to focus light exiting the first fibre end 64 to a remote target 70.
  • the receive channel 62 comprises a second fibre end 72 mounted on a second linear translation stage 74.
  • the axis of the second linear translation stage 74 is oriented at an angle ⁇ to the optic axis of a second lens 76 that is provided to collect light returned from the remote target.
  • Figure 4a illustrates the lidar system configured to interrogate a first target volume 78
  • figure 4b illustrates the lidar system when configured to interrogate a second target volume 80.
  • the angle ⁇ is selected using the criteria set forth with reference to figure 3 above such that the linear translation used to change the focus of the transmit and receive channels inherently causes a change in the squint of the system. This ensures that, for a given range of target distances, the transmit and receive beams are both focused and arranged to intersect at the required remote target.
  • the ability to make a single adjustment to each of the receive transmit channels to vary both the focus and squint of the system is quite advantageous.
  • the present invention permits the range of the system to be varied whilst ensuring continued intersection of the transmit and receive beams. The requirement of prior art devices for the calibration of beam foci and intersection for each range at which the lidar is to be used thus becomes redundant.
  • a focus effect can be achieved by the movement of a lens along the optical axis of the transmitter and receiver telescopes. Translation of a lens away from the optical axis of the telescope can also be used to adjust the squint of the beam produced by that telescope.
  • the present invention could also be applied to systems based on free space optics (i.e. non-fibre based), hi other words, a linear translation of a telescope lens along a path at a given angle to the optical axis of the telescope could provide integral squint and focus correction in a similar manner to that described above for fibre based devices.

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • General Physics & Mathematics (AREA)
  • Radar, Positioning & Navigation (AREA)
  • Remote Sensing (AREA)
  • Electromagnetism (AREA)
  • Optical Radar Systems And Details Thereof (AREA)
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Abstract

A bistatic laser radar (lidar) device is described that comprises a transmit channel (60) for forming a focused transmit beam, and a receive channel (62) for forming a focused receive beam. The device is arranged such that the focus of the transmit beam and the focus of the receive beam fall on a common axis when focused to a distance within the operable distance range of the device. The device may be used for vibrometry, wind speed measurements and the like. Implementation of such a device using optical fibre based components is described.

Description

BISTATIC LASER RADAR APPARATUS
This invention relates to laser radar (lidar) apparatus and more particularly to bistatic coherent laser radar (CLR) apparatus.
Lidar devices are well known, and have been used for a variety of purposes for many years. The basic principle of lidar is to direct a laser beam to a remote target and to detect the returned signal. Modulation of the amplitude of the transmitted laser beam allows simple range information to be determined. Furthermore, the use of coherent laser radar (CLR) permits the measurement of any Doppler shift in the frequency of the returned signal thereby enabling information on the relative speed of the target to be measured. Differential absorption lidar (DIAL) devices are also known in which laser light of two wavelengths is transmitted to a target and the difference in absorption of the first and second wavelengths is used to provide a measure of the molecular concentration of a particular gas species.
CLR devices have been widely used for velocimetry measurements of both soft and hard targets. For example, CLR vibrometry has been used to measure the vibration characteristics of hard targets such as engine casings. CLR has also been used for Doppler wind-speed measurements. In the case of wind speed measurements, the returned signal arises from back-scatter of the transmitted laser beam off small particles (aerosols) such as dust and water droplets. Doppler wind speed measurements have been shown to be useful in a wide range of applications including meteorology, aircraft true airspeed, and detection of aircraft wake vortices.
Measurement of the Doppler frequency shift to a high accuracy is typically achieved in CLR devices by beating (heterodyning) the return signal with a stable local- oscillator beam, usually derived from the same laser as the transmit beam. An example of an optical fibre based CLR system is described in Karlsson et al, Applied Optics, Vol. 39, No.21, 20 July 2000. It is possible to broadly categorise lidar systems as being monostatic or bistatic. Monostatic lidar systems are so called because they have common transmit and receive optics. Bistatic lidar systems derive their name from having separate transmit and receive optics.
In a monostatic system, spatial resolution is achieved by focusing the combined transmit/receive beams to the target. In practice, it has been found that diffraction restricts monostatic CLR systems to operation within ranges of a few hundred metres. More-over, slow drop-off in sensitivity away from the focus can result in a poorly defined probe volume. In the case of wind velocity measurements, clouds, smoke or other objects away from the probe volume may result in the generation of spurious reflections. In the case of monostatic CLR systems, it has also been found that internal parasitic reflections from the common transmit/receive . optics significantly degrade system performance making such systems unsuitable for some long-range applications (e.g. vibrometry) in which a low intensity return signal is detected.
In contrast to monostatic systems, bistatic CLR systems have been found to be well suited to longer range vibrometry and some wind-speed measurements. The non- parallel transmit and receive beams can be arranged to intersect at a certain point thereby accurately defining a probe volume (e.g. an area in space or the surface of a hard target). Although confinement of the probe volume may lead to a reduction in the strength of the returned signal for distributed targets, the noise generated by spurious reflections is greatly reduced compared with monostatic systems.
To obtain optimum performance from bistatic lidar systems, the transmitted and received beam foci must coincide with the location of beam intersection. This is because the transmit and receive optics must be separately focused and also adjusted in angle (i.e. "squinted") to ensure intersection of focused receive and transmit beams at the desired range. It should be noted that herein the term receive beam is used to denote the region from which any returned light will be directed to the detector. In other words the receive beam is not a beam of photons, but a pseudo or virtual beam that defines the area from which light is received by the system.
A method of aligning a bistatic CLR prior to taking a measurement is described in WO01/35117. However, it can be seen that whenever the range of the equipment is altered it is necessary to recalibrate the system alignment using the alignment method. The requirement to perform a calibration step each time the system range is altered greatly reduces the flexibility and user-friendliness of the lidar system.
It is an object of the present invention to mitigate at least some of the disadvantages of bistatic lidar devices described above.
According to the present invention, a bistatic laser radar device comprises a transmit channel for forming a focused transmit beam, and a receive channel for forming a focused receive beam, wherein the device is arranged such that the focus of the transmit beam and the focus of the receive beam fall on a common axis when focused to a distance within the operable distance range of the device.
The present invention thus provides a bistatic lidar device in which squint is adjusted in a predetermined manner as the focus of the transmit and receive beams are varied. This allows, over the required distance range at which the device operates, the foci of the transmit and receive beams to intersect.
In other words, the location of the transmit beam focus position will trace a first axis over the operable distance of the device. The receive beam focus position will trace a second axis as its focus position is changed within the operable distance range of the device. The present invention ensure that the first axis and the second axis are substantially coincident within the operable range of the device; i.e. the foci of the transmit beam and the receive beam fall along a common axis. It should be noted that the common axis may, or may not, be linear depending on the exact geometry employed. As described above, device performance is optimised when the foci of the transmit and receive beams intersect at the desired remote target. An advantage of the present invention over prior art bistatic lidar devices is thus the removal of the requirement to perform a separate squint adjustment step whenever the focus of the transmit and receive beams is altered.
Conveniently, the transmit channel comprises a first optical arrangement configured to form the focused transmit beam and having at least one lens. The first optical arrangement may be a single lens or may comprise a telescopic lens system.
Preferably, laser radiation is passed to the first optical arrangement via a transmit optical fibre cable. Hence, the focus of the transmit beam is adjustable by variation of the relative position of the first optical arrangement with respect to the exit aperture of the transmit optical fibre cable.
Advantageously, the fibre exit aperture is linearly translatable with respect to the first optical arrangement. For example, the fibre optic cable end (i.e. the exit aperture) could be mounted on a linear translation stage and moved with respect to a fixed first optical arrangement (e.g. a lens).
Conveniently, the receive channel comprises a second optical arrangement configured to form the focused receive beam and having at least one lens. The second optical arrangement is preferably configured to couple received radiation in to a receive optical fibre cable.
Preferably, the focus of the receive beam is adjustable by variation of the relative position of the second optical arrangement with respect to the entry aperture of the receive optical fibre
Advantageously, the fibre entry aperture is linearly translatable with respect to the second optical arrangement. For example, the fibre optic cable end (i.e. the entry aperture) could be mounted on a linear translation stage and moved with respect to a fixed second optical arrangement (e.g. a lens).
Conveniently, in the case of a device having a receive channel in which a fibre end is linearly translatable to the second optical arrangement and a transmit channel in which the fibre end is linearly translatable to the first optical arrangement, the exit aperture of the transmit optical fibre is linearly translatable along the optical axis of the first optical arrangement, and the entry aperture of the receive optical fibre is linearly translatable along an axis arranged at a predetermined angle to the optical axis of the second optical arrangement.
The ability to implement the present invention using a pair of linear translation stages (i.e. one stage to provide transmit beam focus and a second stage to provide receive beam focus with squint correction) provides an advantage over typical prior art devices.
Advantageously, the predetermined angle is calculated from the inverse tangent of the ratio of the separation of the transmit channel and receive channel to the focal length of the optical arrangement. A detailed description of how the predetermined angle is calculated is described below with reference to figure 3.
Preferably, the device may further comprise at least one additional receive channel.
In certain circumstances, it is desirable to provide a lidar system having two or more receive channels. For example, in the case of vibrometry measurements made from a hard reflective or light scattering surface (e.g. a window or wall) the laser speckle pattern may produce reflections having an intensity that varies significantly with the angle of observation. A single receive channel could thus be located in a null region and only receive a small return signal. Providing additional receive channels mitigates this problem, as a return signal will be detected by each of the two or more spatially separated receive channels. The two or more returned signals can be combined (e.g. averaged in some way) or the higher intensity signal could be used to provide the required information.
Advantageously, the at least one additional receive channel provides at least one additional receive beam and the focus of the at least one additional receive beam is arranged to intersect the focus of the transmit beam within the operable distance range of the device..
Preferably, the device configured to interact with a distributed (soft) target. For example, the target could be a volume of air and wind speed measurements could be extracted from the device.
Alternatively, the device may advantageously be configured to interact with a hard target. The device may be used, for example, in vibrometry. For example, vibrations of machinery could be monitored in order to identify the onset of failure.
Preferably, the transmit beam is formed from radiation having a wavelength in the region of 1.55μm. The device may, of course, be operated using radiation of any wavelength (e.g. infrared, visible, UV etc).
The invention will now be described, by way of example only, with reference to the following drawings in which;
figure 1 demonstrates the focus and squint properties of a bistatic lidar,
figure 2 shows a technique for focusing and squinting an all fibre lidar,
figure 3 shows the geometry of a bistatic lidar, and
figure 4 illustrates a bistatic lidar according to the present invention. Referring to figure la, the transmitter 2 and receiver 4 of a bistatic lidar device are shown. The transmitter is configured to transmit a laser beam 6 that is focused on a probe volume 8. Similarly, the receiver 4 is configured to be focused on the same probe volume 8; in other words the so-called receive beam 10 of the receiver is also focused on the probe volume 8. Furthermore, the receiver 4 is tilted away from the z-direction by an angle θ so that the focus of the receive beam 10 intersects the focus of the laser beam 6 at the probe volume 8.
The system of figure la thus shows a properly aligned bistatic lidar. The foci of the beams from the transmitter and receiver are co-incident at the probe volume 8.
Figure lb illustrates the effect of altering only the foci of the transmitter and receiver of the lidar system of figure la. It can be seen that although the range to the focus (R) of the transmitter and receiver is shortened, the return signal can only be derived from the region of intersection 12. This reduces the sensitivity of the system.
Referring to figure lc, the effect of altering only the relative angle between the transmitter and receiver of the system of figure la is shown. It can be seen that the return signal will actually be derived from the region of intersection 14, which is at a shorter range than the point of focus of the transmitter and receiver. Again this reduces the sensitivity of the system.
Figure 1 illustrates why both the focus and the squint of a bistatic system must be carefully adjusted so as to define the required probe volume. WO01/35117 describes a technique that has been developed to enable accurate alignment of the transmit and receive beam at a desired probe volume. The method of WO01/35117 involves detaching a section of the receiver optics, and directing a laser beam down the receiver so that a "real" receive beam is formed that precisely matches the spatial light mode into which light must be scattered in order to be detected by the receiver. The receiver and transmitter can then be focused and squinted so that the "real" receive beam and transmit beam intersect and are focused on the desired probe volume. Referring to figure 2, a typical prior art method for varying the focus and squint of a fibre based bistatic lidar apparatus is shown.
Figure 2a illustrates how a beam of laser light 20 emitted from a fibre end 22 can be focused to a point 24 by a lens 26. Figure 2b shows how axial movement (i.e. along the z-axis in figure 2) of the fibre toward the lens can increase the range at which the laser beam is focused. Figure 2c demonstrates how lateral movement of the fibre end with respect to the lens can also provide a lateral movement of the focal point. Control of such lateral movement permits the required amount of squint to be introduced. The required lateral and axial translations can be provided by separate manual (e.g. micrometer) or automated (e.g. motorised translation stage) means.
As described above, the requirement to separately adjust the focus and squint of the system to ensure optimal overlap of the transmit beam and the receive beam on the target adds complexity to the system.
Referring to figure 3, it is demonstrated how the present invention implemented for a fibre based lidar system permits the squint and focus adjustments to be combined in a single linear translation that ensures precise squint compensation as the focus is adjusted.
Consider a bistatic system in which a transmit lens 40 is laterally separated from a receive lens 42 by a distance S. The optical axes of the transmit and receive lenses are both aligned along the z-axis. Each lens has a focal length F, and a remote target T is located at a range R from the lenses.
A first fibre end 44 is located a distance F+Z from the transmit lens 40, and a second fibre end 46 is located a distance F+Z from the receive lens 42. To provide squint, the second fibre end 46 is located a distance X away from the optical axis of the receive lens 42. Hence, the focus condition of the system can be described using the expression;
J__J_
(1)
F + Z R F
This expression can be re-written as;
r7 _ RF-RF + F2 F2
(2) R -F R -F
As an approximation, it can be seen that;
(3)
R
For an axial movement of Z = 15mm, and assuming a focal length of 15cm, the minimum range of the system is 1.5m.
The required amount of squint as a function of range is given by the expression;
S _ X
(4) R ~ F
Hence, it can be seen that;
(5)
R
For a range of 1.5m (i.e. the minimum range of the system as derived from equation 3 above) a required lateral movement (X) of 8mm is required.
Therefore, the present invention lies in the realisation that both X and Z vary with the inverse of the range (R). In other words, it has been found to be possible to achieve focus and squint with a single linear adjustment of the fibre end of the receive optics. The angle (θ) at which a linear adjustment of the fibre end would result in both the desired focus and squint change can be calculated as;
t . X F.S R S tanθ = — = — .— r- « — (6)
Z R F2 F
Thus, in the case of S = 8cm and F = 15cm an angle (θ) of approximately 28° would be required.
It should be noted that the angle (θ) calculated using equation (6) assumes that the range R is significantly greater than the focal length F of the lens. Equation (6) thus starts to break down when the range at which the beams are focused becomes comparable with the focal length.
For light of wavelength λ and having a radius r at the exit aperture, the lateral displacement (ΔL) error required to introduce a 3dB loss is given by;
ΔL3dB * ± — (7) πr
Hence, the minimum range of operation of the system (i.e. the range where the loss is greater than 3dB) is given by;
Figure imgf000012_0001
A beam of radius 1.8cm at the exit aperture having a wavelength of 1.55μm would thus provide a squint error less than 3dB for all ranges greater than about ten metres.
It can thus be seen that alignment of the present invention remains close to optimum for longer range (i.e. beyond around 20m) applications such as vibrometry. However, some deterioration in sensitivity is encountered at short range (i.e. less than around 10m) due to the increased importance of higher-order terms in the focus calculation.
The scheme would normally be implemented with zero squint on the transmit beam, and with the receive fibre mounted on a translation stage aligned diagonally to the optical axis of the receive lens. Alternatively, the T and R modes can be equally squinted in opposing directions by half the amount in the preceding version. In each of these methods, the number of translation stages is reduced from three (two focus and one squint) to two (one focus and one focus/squint, or two focus/squint).
The benefits of the present invention are increased when more than one receiver aperture is employed; for example in a dual-receiver or multiple receiver system.
Referring to figure A, a fibre based lidar system according to the present invention is shown. The bistatic lidar system comprises a transmit channel 60 and a receive channel 62. The transmit channel 60 comprises a first fibre end 64 mounted on a first linear translation stage 66. A first lens 68 is provided to focus light exiting the first fibre end 64 to a remote target 70. The receive channel 62 comprises a second fibre end 72 mounted on a second linear translation stage 74. The axis of the second linear translation stage 74 is oriented at an angle θ to the optic axis of a second lens 76 that is provided to collect light returned from the remote target.
Figure 4a illustrates the lidar system configured to interrogate a first target volume 78, whilst figure 4b illustrates the lidar system when configured to interrogate a second target volume 80. The angle θ is selected using the criteria set forth with reference to figure 3 above such that the linear translation used to change the focus of the transmit and receive channels inherently causes a change in the squint of the system. This ensures that, for a given range of target distances, the transmit and receive beams are both focused and arranged to intersect at the required remote target. As described above, the ability to make a single adjustment to each of the receive transmit channels to vary both the focus and squint of the system is quite advantageous. The present invention permits the range of the system to be varied whilst ensuring continued intersection of the transmit and receive beams. The requirement of prior art devices for the calibration of beam foci and intersection for each range at which the lidar is to be used thus becomes redundant.
In non-fibre based lidar systems a focus effect can be achieved by the movement of a lens along the optical axis of the transmitter and receiver telescopes. Translation of a lens away from the optical axis of the telescope can also be used to adjust the squint of the beam produced by that telescope. A skilled person would recognise that the present invention could also be applied to systems based on free space optics (i.e. non-fibre based), hi other words, a linear translation of a telescope lens along a path at a given angle to the optical axis of the telescope could provide integral squint and focus correction in a similar manner to that described above for fibre based devices.

Claims

Claims.
1 A bistatic laser radar device comprising;
a transmit channel for forming a focused transmit beam, and
a receive channel for forming a focused receive beam,
wherein the device is arranged such that the focus of the transmit beam and the focus of the receive beam fall on a common axis when focused to a distance within the operable distance range of the device.
2. A device according to claim 1 wherein the transmit channel comprises a first optical arrangement configured to form the focused transmit beam and having at least one lens.
3 . A device according to claim 2 wherein laser radiation is passed to the first optical arrangement via a transmit optical fibre cable.
4. A device according to claim 3 wherein the focus of the transmit beam is adjustable by variation of the relative position of the first optical arrangement with respect to the exit aperture of the transmit optical fibre cable.
5. A device according to claim 4 wherein the exit aperture is linearly translatable with respect to the first optical arrangement.
6. A device according to any one of the preceding claims wherein the receive channel comprises a second optical arrangement configured to form the focused receive beam and having at least one lens.
7. A device according to claim 6 wherein the second optical arrangement is configured to couple received radiation in to a receive optical fibre cable.
8. A device according to claim 7 wherein the focus of the receive beam is adjustable by variation of the relative position of the second optical arrangement with respect to the entry aperture of the receive optical fibre
9. A device according to claim 8 wherein the entry aperture is linearly translatable with respect to the second optical arrangement
10. A device according to claim 9 when dependent on claim 5 in which;
the exit aperture of the transmit optical fibre is linearly translatable along the optical axis of the first optical arrangement, and
the entry aperture of the receive optical fibre is linearly translatable along an axis arranged at a predetermined angle to the optical axis of the second optical arrangement.
11. A device according to claim 10 wherein the predetermined angle is calculated from the inverse tangent of the ratio of the separation of the transmit channel and receive channel to the focal length of the optical arrangement.
12. A device according to any preceding claim and further comprising at least one additional receive channel.
13. A device according to claim 12 and comprising at least one additional receive channel to provide at least one additional receive beam, wherein the focus of the at least one additional receive beam is arranged to intersect the focus of the transmit beam within the operable distance range of the device.
14. A device according to any one of the preceding claims wherein the device configured to interact with a soft target.
15. A device according to any one of claims 1 to 13 wherein the device configured to interact with a distributed target.
16. A device according to any one of the preceding claims wherein the transmit beam is formed from radiation having a wavelength in the region of 1.55μm.
17. A device as substantially hereinbefore described with reference to figure 4.
PCT/GB2003/004408 2002-10-10 2003-10-09 Bistatic laser radar apparatus WO2004034084A1 (en)

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Cited By (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1553427A1 (en) * 2004-01-12 2005-07-13 EADS Astrium GmbH Pointing control device and bistatic LIDAR system
US7391506B2 (en) 2004-05-19 2008-06-24 Qinetiq Limited Laser radar device and method
EP1949154A2 (en) * 2005-11-10 2008-07-30 Optical Air Data Systems, LP Single aperture multiple optical waveguide transceiver
US7839491B2 (en) 2005-07-29 2010-11-23 Qinetiq Limited Laser measurement device and method
US9885778B2 (en) 2014-08-15 2018-02-06 Aeye, Inc. Method and system for scanning ladar transmission with pulse modulation
US9933513B2 (en) 2016-02-18 2018-04-03 Aeye, Inc. Method and apparatus for an adaptive ladar receiver
US10042159B2 (en) 2016-02-18 2018-08-07 Aeye, Inc. Ladar transmitter with optical field splitter/inverter
US10185028B2 (en) 2017-02-17 2019-01-22 Aeye, Inc. Method and system for ladar pulse deconfliction using delay code selection
US10495757B2 (en) 2017-09-15 2019-12-03 Aeye, Inc. Intelligent ladar system with low latency motion planning updates
US10598788B1 (en) 2018-10-25 2020-03-24 Aeye, Inc. Adaptive control of Ladar shot selection using spatial index of prior Ladar return data
US10641897B1 (en) 2019-04-24 2020-05-05 Aeye, Inc. Ladar system and method with adaptive pulse duration
US10641872B2 (en) 2016-02-18 2020-05-05 Aeye, Inc. Ladar receiver with advanced optics
WO2020219145A1 (en) * 2019-04-22 2020-10-29 Blackmore Sensors & Analytics, Inc Providing spatial displacement of transmit and receive modes in lidar system
US10908262B2 (en) 2016-02-18 2021-02-02 Aeye, Inc. Ladar transmitter with optical field splitter/inverter for improved gaze on scan area portions
US11300667B1 (en) 2021-03-26 2022-04-12 Aeye, Inc. Hyper temporal lidar with dynamic laser control for scan line shot scheduling
US11467263B1 (en) 2021-03-26 2022-10-11 Aeye, Inc. Hyper temporal lidar with controllable variable laser seed energy
US11480680B2 (en) 2021-03-26 2022-10-25 Aeye, Inc. Hyper temporal lidar with multi-processor return detection
US11500093B2 (en) 2021-03-26 2022-11-15 Aeye, Inc. Hyper temporal lidar using multiple matched filters to determine target obliquity
US11604264B2 (en) 2021-03-26 2023-03-14 Aeye, Inc. Switchable multi-lens Lidar receiver
US11630188B1 (en) 2021-03-26 2023-04-18 Aeye, Inc. Hyper temporal lidar with dynamic laser control using safety models
US11635495B1 (en) 2021-03-26 2023-04-25 Aeye, Inc. Hyper temporal lidar with controllable tilt amplitude for a variable amplitude scan mirror

Families Citing this family (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102004037296A1 (en) * 2004-07-27 2006-03-23 Arnold & Richter Cine Technik Gmbh & Co Betriebs Kg Method of focusing the taking lens of a motion picture or video camera
DE102006031757A1 (en) 2006-01-04 2007-08-02 Arnold & Richter Cine Technik Gmbh & Co. Betriebs Kg Method for automatically correcting image errors in video assist images of a video assist system
US8797550B2 (en) 2009-04-21 2014-08-05 Michigan Aerospace Corporation Atmospheric measurement system
CN102439393B (en) * 2009-05-15 2014-08-20 密歇根宇航公司 Range imaging lidar
KR101300350B1 (en) * 2011-08-09 2013-08-28 삼성전기주식회사 Apparatus and method for processing image
US8947647B2 (en) 2011-12-13 2015-02-03 Raytheon Company Range-resolved vibration using large time-bandwidth product LADAR waveforms
US8947644B2 (en) 2012-01-19 2015-02-03 Raytheon Company Using multiple waveforms from a coherent LADAR for target acquisition
CN104541181B (en) 2012-08-08 2017-05-10 三菱电机株式会社 Radar device
US9057605B2 (en) * 2012-12-06 2015-06-16 Raytheon Company Bistatic synthetic aperture ladar system
US8939081B1 (en) * 2013-01-15 2015-01-27 Raytheon Company Ladar backtracking of wake turbulence trailing an airborne target for point-of-origin estimation and target classification
JP6265365B2 (en) * 2013-05-09 2018-01-24 国立大学法人 東京大学 Measuring system
DE102016118489A1 (en) 2016-09-29 2018-03-29 Valeo Schalter Und Sensoren Gmbh Scanning opto-electronic detection device and method for operating such
US11353571B2 (en) 2017-05-12 2022-06-07 Locata Corporation Pty Ltd Methods and apparatus for characterising the environment of a user platform
US10591422B2 (en) * 2017-10-05 2020-03-17 Honeywell International Inc. Apparatus and method for increasing dynamic range of a particle sensor
JP7158004B2 (en) * 2018-08-31 2022-10-21 株式会社四国総合研究所 Gas concentration measuring device and continuous gas concentration measuring method
KR102363751B1 (en) 2018-09-05 2022-02-15 블랙모어 센서스 앤드 애널리틱스, 엘엘씨 Method and system for pitch-catch scanning of coherent LIDAR
US20220357451A1 (en) * 2019-03-05 2022-11-10 Waymo Llc Lidar transmitter/receiver alignment
JP2024517315A (en) * 2021-05-10 2024-04-19 エヌアイ・システムズ・インコーポレイテッド Quasi-monostatic LIDAR with 2D silicon photonic MEMS switch array
US12039848B2 (en) * 2021-10-28 2024-07-16 Honeywell International Inc. Non-coaxial systems, methods, and devices for detecting smoke

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4248532A (en) * 1978-12-26 1981-02-03 Nosler John C Electro-optical distance-measuring system
US4304487A (en) * 1978-12-14 1981-12-08 Robert Bosch Gmbh Range finder for still or moving picture cameras
US4419011A (en) * 1979-11-26 1983-12-06 Minolta Camera Kabushiki Kaisha Automatic range finder
EP0596865A2 (en) * 1990-12-17 1994-05-11 Stanley Electric Co., Ltd. Light irradiating apparatus having light emitting diode used as light source
US5744793A (en) * 1994-02-28 1998-04-28 Electro-Pro, Inc. Triangulation position-detection and integrated dispensing valve
US5949531A (en) * 1993-05-15 1999-09-07 Leica Geosystems Ag Device for distance measurement
DE19933877A1 (en) * 1999-07-22 2001-01-25 Idm Gmbh Infrarot Sensoren Optical distance and position measuring device e.g. for portal crane, uses reflection of measuring light beam by reflector attached to measured object with lateral deflection of beam at optical transmitter

Family Cites Families (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3554646A (en) * 1969-01-28 1971-01-12 Gen Electric Optical distance gage
DK506284A (en) 1983-11-10 1985-05-11 Mitsubishi Electric Corp LASER-DOPPLER TYPE SPEED METER
US4652122A (en) * 1985-06-26 1987-03-24 United Technologies Corporation Gust detection system
US4963017A (en) * 1989-05-01 1990-10-16 General Electric Company Variable depth range camera
US5280332A (en) * 1990-02-09 1994-01-18 Vx Optronics Method and apparatus for self-correcting, direct sensing coincidence sensor for optical rangefinders
US5082362A (en) * 1990-07-02 1992-01-21 General Electric Company Zoom lens for a variable depth range camera
DE4304815A1 (en) 1993-02-17 1994-08-18 Leitz Mestechnik Gmbh Optical sensor
DE19636922C2 (en) * 1996-09-11 2000-01-27 Deutsch Zentr Luft & Raumfahrt Procedure for adjusting a laser Doppler anemometer
EP2306228A1 (en) * 1998-05-25 2011-04-06 Panasonic Corporation Range finder device and camera
US6323941B1 (en) * 1999-08-06 2001-11-27 Lockheed Martin Corporation Sensor assembly for imaging passive infrared and active LADAR and method for same
US6445844B1 (en) * 1999-09-15 2002-09-03 Xros, Inc. Flexible, modular, compact fiber optic switch
GB9926516D0 (en) 1999-11-10 2000-01-12 Secr Defence Doppler sensor apparatus
US6532061B2 (en) * 2000-08-25 2003-03-11 Amnis Corporation Measuring the velocity of small moving objects such as cells
US20020075472A1 (en) * 2000-09-22 2002-06-20 Holton Carvel E. Optical fiber ceilometer for meteorological cloud altitude sensing
US6570646B2 (en) * 2001-03-06 2003-05-27 The Regents Of The University Of California Optical distance measurement device and method thereof

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4304487A (en) * 1978-12-14 1981-12-08 Robert Bosch Gmbh Range finder for still or moving picture cameras
US4248532A (en) * 1978-12-26 1981-02-03 Nosler John C Electro-optical distance-measuring system
US4419011A (en) * 1979-11-26 1983-12-06 Minolta Camera Kabushiki Kaisha Automatic range finder
EP0596865A2 (en) * 1990-12-17 1994-05-11 Stanley Electric Co., Ltd. Light irradiating apparatus having light emitting diode used as light source
US5949531A (en) * 1993-05-15 1999-09-07 Leica Geosystems Ag Device for distance measurement
US5744793A (en) * 1994-02-28 1998-04-28 Electro-Pro, Inc. Triangulation position-detection and integrated dispensing valve
DE19933877A1 (en) * 1999-07-22 2001-01-25 Idm Gmbh Infrarot Sensoren Optical distance and position measuring device e.g. for portal crane, uses reflection of measuring light beam by reflector attached to measured object with lateral deflection of beam at optical transmitter

Cited By (77)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1553427A1 (en) * 2004-01-12 2005-07-13 EADS Astrium GmbH Pointing control device and bistatic LIDAR system
US7391506B2 (en) 2004-05-19 2008-06-24 Qinetiq Limited Laser radar device and method
US7839491B2 (en) 2005-07-29 2010-11-23 Qinetiq Limited Laser measurement device and method
EP1949154A2 (en) * 2005-11-10 2008-07-30 Optical Air Data Systems, LP Single aperture multiple optical waveguide transceiver
EP1949154A4 (en) * 2005-11-10 2012-11-14 Optical Air Data Systems Lp Single aperture multiple optical waveguide transceiver
US9897689B2 (en) 2014-08-15 2018-02-20 Aeye, Inc. Method and system for ladar transmission with interline skipping for dynamic scan patterns
US10215848B2 (en) 2014-08-15 2019-02-26 Aeye, Inc. Method and system for ladar transmission with interline detouring for dynamic scan patterns
US9885778B2 (en) 2014-08-15 2018-02-06 Aeye, Inc. Method and system for scanning ladar transmission with pulse modulation
US10908265B2 (en) 2014-08-15 2021-02-02 Aeye, Inc. Ladar transmitter with feedback control of dynamic scan patterns
US10042043B2 (en) 2014-08-15 2018-08-07 Aeye, Inc. Method and system for ladar transmission employing dynamic scan patterns with macro patterns and base patterns
US10073166B2 (en) 2014-08-15 2018-09-11 Aeye, Inc. Method and system for ladar transmission with spinning polygon mirror for dynamic scan patterns
US10078133B2 (en) 2014-08-15 2018-09-18 Aeye, Inc. Method and system for ladar transmission with closed loop feedback control of dynamic scan patterns
US10088558B2 (en) 2014-08-15 2018-10-02 Aeye, Inc. Method and system for ladar transmission with spiral dynamic scan patterns
US10386464B2 (en) 2014-08-15 2019-08-20 Aeye, Inc. Ladar point cloud compression
US12078798B2 (en) 2016-02-18 2024-09-03 Aeye, Inc. Ladar transmitter with ellipsoidal reimager
US10641872B2 (en) 2016-02-18 2020-05-05 Aeye, Inc. Ladar receiver with advanced optics
US10782393B2 (en) 2016-02-18 2020-09-22 Aeye, Inc. Ladar receiver range measurement using distinct optical path for reference light
US10761196B2 (en) 2016-02-18 2020-09-01 Aeye, Inc. Adaptive ladar receiving method
US10754015B2 (en) 2016-02-18 2020-08-25 Aeye, Inc. Adaptive ladar receiver
US11693099B2 (en) 2016-02-18 2023-07-04 Aeye, Inc. Method and apparatus for an adaptive ladar receiver
US11300779B2 (en) 2016-02-18 2022-04-12 Aeye, Inc. Ladar transmitter with ellipsoidal reimager
US10641873B2 (en) 2016-02-18 2020-05-05 Aeye, Inc. Method and apparatus for an adaptive ladar receiver
US11726315B2 (en) 2016-02-18 2023-08-15 Aeye, Inc. Ladar transmitter with ellipsoidal reimager
US10042159B2 (en) 2016-02-18 2018-08-07 Aeye, Inc. Ladar transmitter with optical field splitter/inverter
US11175386B2 (en) 2016-02-18 2021-11-16 Aeye, Inc. Ladar system with adaptive receiver
US10642029B2 (en) 2016-02-18 2020-05-05 Aeye, Inc. Ladar transmitter with ellipsoidal reimager
US10908262B2 (en) 2016-02-18 2021-02-02 Aeye, Inc. Ladar transmitter with optical field splitter/inverter for improved gaze on scan area portions
US9933513B2 (en) 2016-02-18 2018-04-03 Aeye, Inc. Method and apparatus for an adaptive ladar receiver
US11835658B2 (en) 2017-02-17 2023-12-05 Aeye, Inc. Method and system for ladar pulse deconfliction
US10209349B2 (en) 2017-02-17 2019-02-19 Aeye, Inc. Method and system for ladar pulse deconfliction to detect and track other ladar systems
US11092676B2 (en) 2017-02-17 2021-08-17 Aeye, Inc. Method and system for optical data communication via scanning ladar
US10185028B2 (en) 2017-02-17 2019-01-22 Aeye, Inc. Method and system for ladar pulse deconfliction using delay code selection
US10386467B2 (en) 2017-02-17 2019-08-20 Aeye, Inc. Ladar pulse deconfliction apparatus
US10379205B2 (en) 2017-02-17 2019-08-13 Aeye, Inc. Ladar pulse deconfliction method
US10663596B2 (en) 2017-09-15 2020-05-26 Aeye, Inc. Ladar receiver with co-bore sited camera
US11821988B2 (en) 2017-09-15 2023-11-21 Aeye, Inc. Ladar system with intelligent selection of shot patterns based on field of view data
US11002857B2 (en) 2017-09-15 2021-05-11 Aeye, Inc. Ladar system with intelligent selection of shot list frames based on field of view data
US10641900B2 (en) 2017-09-15 2020-05-05 Aeye, Inc. Low latency intra-frame motion estimation based on clusters of ladar pulses
US10495757B2 (en) 2017-09-15 2019-12-03 Aeye, Inc. Intelligent ladar system with low latency motion planning updates
US10670718B1 (en) 2018-10-25 2020-06-02 Aeye, Inc. System and method for synthetically filling ladar frames based on prior ladar return data
US11733387B2 (en) 2018-10-25 2023-08-22 Aeye, Inc. Adaptive ladar receiver control using spatial index of prior ladar return data
US10656277B1 (en) 2018-10-25 2020-05-19 Aeye, Inc. Adaptive control of ladar system camera using spatial index of prior ladar return data
US10656252B1 (en) 2018-10-25 2020-05-19 Aeye, Inc. Adaptive control of Ladar systems using spatial index of prior Ladar return data
US11327177B2 (en) 2018-10-25 2022-05-10 Aeye, Inc. Adaptive control of ladar shot energy using spatial index of prior ladar return data
US10598788B1 (en) 2018-10-25 2020-03-24 Aeye, Inc. Adaptive control of Ladar shot selection using spatial index of prior Ladar return data
US11079546B2 (en) 2019-04-22 2021-08-03 Blackmore Sensors & Analytics, LLC. Providing spatial displacement of transmit and receive modes in LIDAR system
WO2020219145A1 (en) * 2019-04-22 2020-10-29 Blackmore Sensors & Analytics, Inc Providing spatial displacement of transmit and receive modes in lidar system
CN113711081A (en) * 2019-04-22 2021-11-26 布莱克莫尔传感器和分析有限责任公司 Providing spatial shifting of transmit and receive modes in a LIDAR system
CN113711081B (en) * 2019-04-22 2023-01-06 布莱克莫尔传感器和分析有限责任公司 Providing spatial shifting of transmit and receive modes in a LIDAR system
US11409043B2 (en) 2019-04-22 2022-08-09 Blackmore Sensors And Analytics, Llc Providing spatial displacement of transmit and receive modes in lidar system
US11513223B2 (en) 2019-04-24 2022-11-29 Aeye, Inc. Ladar system and method with cross-receiver
US10641897B1 (en) 2019-04-24 2020-05-05 Aeye, Inc. Ladar system and method with adaptive pulse duration
US10656272B1 (en) 2019-04-24 2020-05-19 Aeye, Inc. Ladar system and method with polarized receivers
US10921450B2 (en) 2019-04-24 2021-02-16 Aeye, Inc. Ladar system and method with frequency domain shuttering
US11474212B1 (en) 2021-03-26 2022-10-18 Aeye, Inc. Hyper temporal lidar with dynamic laser control and shot order simulation
US11635495B1 (en) 2021-03-26 2023-04-25 Aeye, Inc. Hyper temporal lidar with controllable tilt amplitude for a variable amplitude scan mirror
US11480680B2 (en) 2021-03-26 2022-10-25 Aeye, Inc. Hyper temporal lidar with multi-processor return detection
US11486977B2 (en) 2021-03-26 2022-11-01 Aeye, Inc. Hyper temporal lidar with pulse burst scheduling
US11493610B2 (en) 2021-03-26 2022-11-08 Aeye, Inc. Hyper temporal lidar with detection-based adaptive shot scheduling
US11500093B2 (en) 2021-03-26 2022-11-15 Aeye, Inc. Hyper temporal lidar using multiple matched filters to determine target obliquity
US11474213B1 (en) 2021-03-26 2022-10-18 Aeye, Inc. Hyper temporal lidar with dynamic laser control using marker shots
US11467263B1 (en) 2021-03-26 2022-10-11 Aeye, Inc. Hyper temporal lidar with controllable variable laser seed energy
US11604264B2 (en) 2021-03-26 2023-03-14 Aeye, Inc. Switchable multi-lens Lidar receiver
US11619740B2 (en) 2021-03-26 2023-04-04 Aeye, Inc. Hyper temporal lidar with asynchronous shot intervals and detection intervals
US11630188B1 (en) 2021-03-26 2023-04-18 Aeye, Inc. Hyper temporal lidar with dynamic laser control using safety models
US11474214B1 (en) 2021-03-26 2022-10-18 Aeye, Inc. Hyper temporal lidar with controllable pulse bursts to resolve angle to target
US11675059B2 (en) 2021-03-26 2023-06-13 Aeye, Inc. Hyper temporal lidar with elevation-prioritized shot scheduling
US11686846B2 (en) 2021-03-26 2023-06-27 Aeye, Inc. Bistatic lidar architecture for vehicle deployments
US11686845B2 (en) 2021-03-26 2023-06-27 Aeye, Inc. Hyper temporal lidar with controllable detection intervals based on regions of interest
US11300667B1 (en) 2021-03-26 2022-04-12 Aeye, Inc. Hyper temporal lidar with dynamic laser control for scan line shot scheduling
US11460553B1 (en) 2021-03-26 2022-10-04 Aeye, Inc. Hyper temporal lidar with dynamic laser control using different mirror motion models for shot scheduling and shot firing
US11460552B1 (en) 2021-03-26 2022-10-04 Aeye, Inc. Hyper temporal lidar with dynamic control of variable energy laser source
US11822016B2 (en) 2021-03-26 2023-11-21 Aeye, Inc. Hyper temporal lidar using multiple matched filters to orient a lidar system to a frame of reference
US11460556B1 (en) 2021-03-26 2022-10-04 Aeye, Inc. Hyper temporal lidar with shot scheduling for variable amplitude scan mirror
US11448734B1 (en) 2021-03-26 2022-09-20 Aeye, Inc. Hyper temporal LIDAR with dynamic laser control using laser energy and mirror motion models
US12050286B2 (en) 2021-03-26 2024-07-30 Aeye, Inc. Hyper temporal lidar with dynamic shot scheduling using a laser energy model
US11442152B1 (en) 2021-03-26 2022-09-13 Aeye, Inc. Hyper temporal lidar with dynamic laser control using a laser energy model

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DE60310107D1 (en) 2007-01-11
EP1549974A1 (en) 2005-07-06
EP1549974B1 (en) 2006-11-29
JP2006502401A (en) 2006-01-19
US8422000B2 (en) 2013-04-16
GB0223512D0 (en) 2002-11-13
US20060061753A1 (en) 2006-03-23
AU2003269271A1 (en) 2004-05-04
DE60310107T2 (en) 2007-05-03
ATE347113T1 (en) 2006-12-15

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