WO2014205916A1 - 一种用于投影终端的图像修正方法及投影终端 - Google Patents
一种用于投影终端的图像修正方法及投影终端 Download PDFInfo
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- WO2014205916A1 WO2014205916A1 PCT/CN2013/083214 CN2013083214W WO2014205916A1 WO 2014205916 A1 WO2014205916 A1 WO 2014205916A1 CN 2013083214 W CN2013083214 W CN 2013083214W WO 2014205916 A1 WO2014205916 A1 WO 2014205916A1
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- image
- correction
- projection terminal
- projected
- projection
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- 238000000034 method Methods 0.000 title claims abstract description 47
- 238000003702 image correction Methods 0.000 title claims abstract description 27
- 238000012937 correction Methods 0.000 claims abstract description 115
- 230000003287 optical effect Effects 0.000 claims abstract description 31
- 230000008569 process Effects 0.000 abstract description 7
- 238000010586 diagram Methods 0.000 description 11
- 230000008859 change Effects 0.000 description 5
- 230000004048 modification Effects 0.000 description 4
- 238000012986 modification Methods 0.000 description 4
- 230000020169 heat generation Effects 0.000 description 3
- 238000004364 calculation method Methods 0.000 description 2
- 230000000694 effects Effects 0.000 description 2
- 230000005484 gravity Effects 0.000 description 2
- 238000004519 manufacturing process Methods 0.000 description 2
- 239000002699 waste material Substances 0.000 description 2
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 2
- 230000009286 beneficial effect Effects 0.000 description 1
- 238000006243 chemical reaction Methods 0.000 description 1
- 238000012790 confirmation Methods 0.000 description 1
- 238000006073 displacement reaction Methods 0.000 description 1
- 238000005265 energy consumption Methods 0.000 description 1
- 238000005516 engineering process Methods 0.000 description 1
- 238000012545 processing Methods 0.000 description 1
- 230000009467 reduction Effects 0.000 description 1
Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N9/00—Details of colour television systems
- H04N9/12—Picture reproducers
- H04N9/31—Projection devices for colour picture display, e.g. using electronic spatial light modulators [ESLM]
- H04N9/3179—Video signal processing therefor
- H04N9/3185—Geometric adjustment, e.g. keystone or convergence
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N9/00—Details of colour television systems
- H04N9/12—Picture reproducers
- H04N9/31—Projection devices for colour picture display, e.g. using electronic spatial light modulators [ESLM]
- H04N9/3191—Testing thereof
- H04N9/3194—Testing thereof including sensor feedback
Definitions
- the present invention relates to the field of correction of projected images, and more particularly to an image correction method and projection terminal for a projection terminal. Background technique
- portable terminals with projection functions are becoming more and more popular, which brings about some problems while improving the user experience.
- the user often holds the portable terminal and operates the portable terminal at the same time, so that shaking or projection angle shift may occur, causing the display screen to be deflected or the display content is stretched and deformed, which affects the display of the display content, and reduces the display content.
- the applicability of the projection function In view of the distortion of the display image caused by the jitter of the projector, the prior art also provides a corresponding solution, such as obtaining the horizontal deflection, the vertical deflection and the change value of the rotation of the projector, and the projection of the projector by the graphic correction algorithm.
- an embodiment of the present invention provides an image correction method and a projection terminal for a projection terminal, which solves the problem of applying the existing projection image correction technology to a portable terminal. Too high a problem.
- An embodiment of the present invention provides an image correction method for a projection terminal, the method comprising: acquiring a horizontal deflection angle of a projection terminal; and, according to the horizontal deflection angle and a projection optical axis of the projection terminal, the projection terminal The image to be projected is rotated for correction.
- the image of the projection terminal to be projected is rotated and corrected according to the horizontal deflection angle and the projection optical axis of the projection terminal, and includes:
- the rotation correction is performed on the image to be projected based on the correction parameter centering on the correction reference point.
- the corresponding relationship between the horizontal deflection angle and the correction parameter is: the correction parameter is an absolute value of the horizontal deflection angle.
- the manner of rotating the image to be projected is reverse rotation.
- the acquiring a horizontal deflection angle of the projection terminal includes:
- the first included angle is subtracted from the second included angle to obtain a horizontal deflection angle of the projection terminal.
- the image adjustment method provided by the above embodiment further includes: determining whether it is necessary to correct the image to be projected.
- the embodiment of the present invention further provides a projection terminal, where the projection terminal includes: an acquisition module and a correction module;
- the acquiring module is configured to acquire a horizontal deflection angle of the projection terminal, and an axis, and perform rotation modification on the image to be projected of the projection terminal.
- the correction module comprises: a correction parameter determination sub-module, a correction reference point determination sub-module and a rotation sub-module,
- the correction parameter determining submodule is configured to determine a correction parameter of the image to be projected according to a correspondence between a horizontal deflection angle and a correction parameter and the horizontal deflection angle;
- the calibration reference point determining sub-module is configured to determine a calibration reference point of the image to be projected according to a correspondence between the projection optical axis and an image to be projected;
- the rotation submodule is configured to perform rotation correction on the image to be projected according to the correction parameter centering on the correction reference point.
- the correction parameter determining submodule is configured to acquire an absolute value of the horizontal deflection angle, and use the obtained absolute value as the correction parameter.
- the rotation submodule is configured to reversely rotate the correction parameter on the image to be projected.
- the acquiring module is configured to acquire a first angle between an initial position of the projection terminal and a horizontal plane, detect a second angle between a current position of the projection terminal and a horizontal plane, and subtract the second angle by using the second angle The first angle is obtained, and the horizontal deflection angle of the projection terminal is obtained.
- the projection terminal further includes a determining module configured to determine whether the projection image needs to be corrected, and output the determination result to the correction module.
- the image correction method and the projection terminal provided by the embodiment of the invention acquire the horizontal deflection angle of the projection terminal, and use the horizontal rotation angle to rotate the image to be projected, thereby solving the projection
- the projection picture distortion caused by the terminal rotating around the projection optical axis since the correction process only rotates the image to be projected, no complicated graphic correction algorithm is needed for correction, the cost is low, the correction speed is fast, and the power consumption is small. The heat production is small, which greatly increases the user experience of the portable terminal.
- 1 is a schematic diagram of projection by a projection terminal
- Figure 2 (a) ⁇ Figure 2 (d) is a schematic view of the projected image
- FIG. 3 is a schematic flowchart of an image correction method according to a first embodiment of the present invention
- FIG. 4 is a schematic flowchart of an image correction method according to a second embodiment of the present invention
- FIG. 6 is a schematic flow chart of an image method according to a fourth embodiment of the present invention.
- FIG. 7 is a schematic diagram of a projection terminal according to a fourth embodiment of the present invention without jitter
- FIG. 8 is a schematic diagram showing a case where a projection terminal of the fourth embodiment of the present invention is shaken and no image correction is performed;
- Fig. 9 is a view showing a state in which the projection terminal of the fourth embodiment of the present invention is shaken and image is corrected. detailed description
- the image adjustment method provided by the embodiment of the present invention can be applied to all projection terminals having a projection function, such as a professional device such as a projector; preferably, it is applied to a portable intelligent terminal having a projection function such as a mobile phone,
- a projection function such as a professional device such as a projector
- a portable intelligent terminal having a projection function such as a mobile phone
- FIG. 1 is a schematic diagram of projection by a projection terminal. As shown in FIG. 1, when the user operates the projection terminal 11, the projection of the projection terminal 11 may be caused. For convenience of explanation, during the normal use of the projection terminal 11, the setting is as follows.
- the ⁇ - ⁇ - ⁇ space coordinate system in Fig. 1 the jitter of the projection terminal 11 It will drive the projection of the projection axis of the projection terminal, but regardless of how the projection terminal shakes, it can be split into jitters on the following four components:
- the projection terminal 11 is deflected along the X-axis in the X-Z plane, causing the projection optical axis to also be deflected along the X-axis in the X-Z plane;
- the projection terminal 11 is deflected along the Y-axis in the Y-Z plane, causing the projection optical axis to also be deflected along the Y-axis in the Y-Z plane;
- the projection terminal 11 rotates along the Z axis on the X-Y plane, at which time the projection optical axis does not change with respect to the Z axis;
- the projection terminal 11 moves back and forth along the Z axis, at which time the projection optical axis does not change with respect to the Z axis.
- FIG. 2(a) to 2(d) are schematic views of the projected image, as shown in Fig. 2:
- Fig. 2(a) is a schematic diagram showing the normal display of the projection terminal 11 without any deflection.
- the projection terminal 11 is deflected along the positive X-axis on the XZ plane, the projected image is deflected to the right, the projected image becomes long, and is inverted "trapezoid", as shown in Fig. 2 (b); the projection terminal is on the XZ plane The negative X-axis deflection is not shown.
- the projected image is a left-right symmetric inverted "trapezoid"; if the projection terminal 11 is deflected along the positive Y-axis on the YZ plane, the projected image is deflected upward, the projected image is widened, and "Trapezoidal", as shown in Figure 2 (c); projection of the projection terminal along the negative Y-axis on the YZ plane is not shown, it is foreseen that the projected image is a vertically “symmetrical" "trapezoid";
- the projection terminal 11 rotates along the Z axis on the XY plane, since the projection optical axis does not change with respect to the Z axis, the projection image does not undergo distortion distortion, but the projection image is rotated around the projection optical axis of the projection terminal, as shown in FIG. 2 . (d) as shown;
- the projection terminal 11 moves back and forth along the Z axis, the projection optical axis does not change with respect to the Z axis, and the projected image does not undergo distortion distortion, but overall enlargement (projection terminal moves backward)/reduction (projection terminal forward) Move);
- the projection terminal 11 when the projection terminal 11 occurs on the X-Z plane, it is deflected along the X-axis.
- the projection terminal 11 when the projection terminal 11 is shaken, the best solution is to correct the four components.
- this correction method is not suitable for projection of a mobile phone or the like.
- the present invention provides a projection image correction method that can be widely applied to a projection terminal such as a mobile phone, on the basis of the manufacturing cost, energy consumption, heat generation and user experience of the integrated mobile phone. .
- FIG. 3 is a schematic flowchart of an image correction method according to a first embodiment of the present invention. As shown in FIG. 3, in the embodiment, the image correction method includes the following steps:
- Step 301 Acquire a horizontal deflection angle of the projection terminal.
- the acquiring the horizontal deflection angle of the projection terminal comprises: acquiring a first angle between the initial position of the projection terminal and the horizontal plane, detecting a second angle between the current position of the projection terminal and the horizontal plane; and subtracting the first clip by using the second angle Angle, the horizontal deflection angle of the projection terminal is obtained.
- Step 302 Perform rotation modification on the to-be-projected image of the projection terminal according to the horizontal deflection angle and the projection optical axis of the projection terminal; and the projection terminal outputs the corrected image to be projected.
- the rotating correction of the image to be projected on the projection terminal according to the horizontal deflection angle and the projection optical axis of the projection terminal includes:
- the correction parameter of the image to be projected is: the correction parameter is an absolute value of the horizontal deflection angle;
- the image to be projected is rotated and corrected based on the correction parameter centering on the correction reference point; preferably, the method of rotating the image to be projected is reverse rotation.
- FIG. 4 is a schematic flowchart of an image correction method according to a second embodiment of the present invention.
- the image correction method provided by the present invention includes the following steps 301 and 302, and further includes the following Steps:
- Step 401 Obtain a horizontal deflection angle of the projection terminal.
- Step 402 Determine whether it is necessary to rotate the projected image; when the result of the determination is yes, execute step 403; otherwise, return to step 401.
- Step 403 Perform rotation modification on the image to be projected of the projection terminal.
- Determining whether the need to rotate the image to be projected specifically includes: determining whether rotation correction is to be performed on the projected image according to a horizontal deflection angle of the projection terminal; for example, determining whether the horizontal deflection angle is greater than a predetermined threshold: if the horizontal deflection angle is greater than or Equivalent to the preset threshold, indicating that if the projection image is not rotated, the image projected by the projection terminal will affect the user's browsing.
- the result of the determination is that the image to be projected is subjected to rotation correction, and step 403 is performed;
- the horizontal deflection angle is smaller than the preset threshold, it means that the image projected by the projection terminal does not affect the browsing of the user even if the projection image is not rotated, and in order to reduce the power consumption of the projection terminal, the judgment result is unnecessary.
- Rotation correction is performed on the projected image, and the process returns to step 401.
- the projection terminal provided by the present invention includes: an acquisition module 51 and a correction module 52, wherein
- the obtaining module 51 is configured to obtain a horizontal deflection angle of the projection terminal for use by other function modules, for example, as a basis for the rotation correction of the image to be projected by the correction module;
- the correction module 52 is configured to acquire the horizontal deflection angle and the projection terminal according to the acquisition module 51.
- the projection optical axis is rotated and corrected for the image to be projected of the projection terminal.
- the correction module 52 includes: a correction parameter determination sub-module, a calibration reference point confirmation stator module, and a rotation sub-module, wherein
- a correction parameter determining submodule configured to determine a correction parameter of the image to be projected according to a correspondence relationship between the horizontal deflection angle and the correction parameter and a horizontal deflection angle
- a calibration reference point determining sub-module configured to determine a calibration reference point of the image to be projected according to a correspondence relationship between the projection optical axis and the image to be projected;
- the rotation submodule is configured to rotate and correct the projected image according to the correction parameters centering on the calibration reference point.
- the correction parameter determination submodule is configured to acquire an absolute value of the horizontal deflection angle, and use the obtained absolute value as a correction parameter.
- the rotation submodule is configured to reverse rotation correction parameters of the image to be projected.
- the acquiring module 51 is configured to acquire a first angle between the initial position of the projection terminal and the horizontal plane, detect a second angle between the current position of the projection terminal and the horizontal plane, and subtract the first angle from the second angle to obtain the first angle The horizontal deflection angle of the projection terminal.
- the projection terminal further comprises a judging module configured to determine whether the image to be projected needs to be corrected according to the horizontal deflection angle, and output the determination result to the correction module 52.
- a judging module configured to determine whether the image to be projected needs to be corrected according to the horizontal deflection angle, and output the determination result to the correction module 52.
- the obtaining module 51 may be implemented by an angle sensor in the projection terminal in an actual application; the correction module 52 and its submodules: a correction parameter determining submodule, a calibration reference point determining submodule, and a rotating submodule, And a judging module, in a practical application, may be a central processing unit (CPU) in the projection terminal, or a digital signal processor (DSP), or a programmable gate array (Field-Programmable)
- CPU central processing unit
- DSP digital signal processor
- Field-Programmable Field-Programmable
- FIG. 6 is a schematic flowchart of an image correction method according to a fourth embodiment of the present invention.
- the image correction method comprises the following steps:
- Step 601 Set a preset threshold.
- the preset threshold can be set by the projection terminal itself, or can be set by the user according to the need.
- Step 602 Set an initial position of the projection terminal.
- Step 603 Obtain the current location of the projection terminal.
- Obtaining the current position of the projection terminal is for calculating the horizontal deflection angle of the projection terminal.
- the gravity sensor detects the projection at time T1.
- the current position of the terminal is at an angle of 3° to the horizontal plane.
- the current position of the projection terminal is detected to be 6° from the horizontal plane.
- Step 604 Calculate the horizontal deflection angle of the projection terminal.
- Step 605 Determine whether it is necessary to perform correction on the projected image; if necessary, execute step 606, if not, return to step 603 to continue executing the method flow;
- step 606 it is determined whether the projection image needs to be corrected by comparing the magnitude relationship between the horizontal deflection angle and the preset threshold.
- ⁇ ⁇ 3.
- Step 606 Determine a correction parameter of the image to be projected.
- Step 607 Determine a correction reference point of the image to be projected.
- the jitter of the projection terminal may cause the movement of the projection optical axis of the projection terminal (up, down, left, and right), in order to ensure the level of the final projected image, it is necessary to determine the correction reference point of the image to be projected, and the specific method is: according to the projection optical axis and The corresponding relationship of the image to be projected is determined, and the correction reference point of the image to be projected is determined. Generally, the corresponding point on the projection optical axis of the projection terminal on the image to be projected is used as the correction reference point.
- Step 608 Perform rotation correction on the projected image.
- the specific method is: rotating the correction of the image to be projected according to the correction parameter centering on the calibration reference point, and the rotation of the image to be projected can be realized by spatial displacement conversion of the coordinate; the rotation of the image to be projected can be reverse rotation.
- Step 609 Project the corrected image to be projected.
- FIG. 7 is a schematic diagram of the projection terminal of the fourth embodiment when there is no jitter
- FIG. 8 is a schematic diagram of the projection terminal of the fourth embodiment when the image is shaken without image correction
- FIG. 9 is a schematic diagram of the projection terminal of the fourth embodiment Schematic diagram of image correction;
- Figure 7 to Figure 9 shows:
- step 606 to step 609 will be performed. Referring to FIG. 9, it can be seen that:
- step 606 determines the correction parameter as rotation ⁇ ⁇ ;
- step 607 The execution result of step 607 is to use "0 point" in the image to be projected in FIG. 9 as a correction reference point;
- step 608 The execution result of step 608 is that the image to be projected is reversely rotated by ⁇ ⁇ centered on "0 point" to form an image to be projected as shown in FIG. 9;
- step 609 The result of the execution of step 609 is to project a projected image as shown in FIG. 9.
- the projection optical axis of the projection terminal does not move up and down (along the X axis) (and along the x-axis), and therefore, the projected image thereof is also No up, down, left or right movement occurs; correspondingly, if the projection optical axis of the projection terminal moves up and down (along the X axis) (up and down the X axis), the projected image will also move up and down, left and right as shown in Figure 2. Stretch, however, it does not affect the user's reading.
- the horizontal deflection angle of the projection terminal is obtained, and the horizontal rotation angle is used to rotate the image to be projected, thereby solving the problem of projection image distortion caused by the projection terminal rotating around the projection optical axis, and at the same time, since the correction process is only Rotating the image to be projected does not require complicated graphics correction algorithms for correction, low cost, fast correction speed, low power consumption, low heat generation, and greatly increases the user experience of the portable terminal;
- the preset threshold is set, and according to the preset threshold and the horizontal deflection angle of the projection terminal, whether to perform the rotation correction is performed, and only when the horizontal deflection angle is greater than or equal to the preset threshold, the rotation correction of the image to be projected is avoided. Frequently correcting the waste of the projected image to the projection terminal.
- the embodiment of the present invention solves the problem of distortion of a projection image caused by the projection terminal rotating around the projection optical axis by acquiring the horizontal deflection angle of the projection terminal and rotating the image to be projected by using the horizontal rotation angle.
- the correction process only rotates the image to be projected, and does not require complicated graphic correction algorithms for correction.
- the cost is low, the correction speed is fast, and the power consumption is small, and the heat generation is small, which greatly increases the user experience of the portable terminal.
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Abstract
本发明实施例公开了一种用于投影终端的图像修正方法及投影终端,所述方法包括:获取投影终端的水平偏转角;根据水平偏转角及投影终端的投影光轴,对投影终端的待投影图像进行旋转修正。通过本发明实施例的技术方案,获取投影终端的水平偏转角,并利用该水平旋转角通过对待投影图像进行旋转,解决了投影终端以投影光轴为中心旋转时所造成的投影画面失真问题,同时,由于修正过程仅为旋转待投影图像,不需要繁杂的图形校正算法进行修正,成本低,修正速度快,并且耗电少,产热少,大大增加了便携终端用户的使用体验。
Description
一种用于投影终端的图像修正方法及投影终端 技术领域
本发明涉及投影图像的修正领域, 尤其涉及一种用于投影终端的图像 修正方法及投影终端。 背景技术
目前, 具备投影功能的便携终端越来越普及, 在提升用户使用体验的 同时, 也带来了一些问题。 例如, 在播放幻灯片时, 用户经常会手持便携 终端, 同时并操作便携终端, 因此可能产生晃动或投影角度偏移, 引起显 示画面角度偏转或显示内容拉伸变形, 影响显示内容阅览, 降低了投影功 能的可适用性。 针对投影仪发生抖动所造成的显示图像失真问题, 现有技 术也提供了相应的解决方法, 如, 获取投影仪的水平偏转、 垂直偏转及旋 转的变化值, 通过图形校正算法对投影仪的投影画面修正, 以达到对投影 仪显示画面修正的效果。 但是, 这类的投影仪显示修正算法需要专业的算 法芯片 /软件进行修正, 过程繁杂、 运算量大、 且需要消耗大量的电量、 产 生大量的热量, 一般运用到专业的投影仪产品中。
可以预见的是, 如果将上述方案运用到便携终端中, 如手机等, 就需 要在手机中内置专业的算法芯片 /软件, 除去会导致手机生成成本大大增加 之外, 并且需要消耗大量的手机电池的电量, 降低电池寿命, 并产生大量 的热量, 导致手机温度过高, 严重降低了用户的体验。 发明内容
有鉴于此, 本发明实施例提供了一种用于投影终端的图像修正方法及 投影终端, 解决了将现有投影图像修正技术应用到便携终端时所存在的温
度过高问题。
本发明实施例提供了一种用于投影终端的图像修正方法, 所述方法包 括: 获取投影终端的水平偏转角; 根据所述水平偏转角及投影终端的投影 光轴, 对所述投影终端的待投影图像进行旋转修正。
优选地, 在上述实施例提供的图像修正方法中, 所述根据水平偏转角 及投影终端的投影光轴, 对所述投影终端的待投影图像进行旋转修正, 包 括:
根据水平偏转角与校正参数的对应关系及所述水平偏转角, 确定所述 待投影图像的校正参数;
根据所述投影光轴与待投影图像的对应关系, 确定所述待投影图像的 校正基准点;
以所述校正基准点为中心, 根据所述校正参数对待投影图像进行旋转 修正。
优选地, 在上述实施例提供的图像调整方法中, 所述水平偏转角与校 正参数的对应关系为: 所述校正参数为所述水平偏转角的绝对值。
优选地, 在上述实施例提供的图像调整方法中, 所述对所述待投影图 像进行旋转的方式为逆向旋转。
优选地, 在上述实施例提供的图像调整方法中, 所述获取投影终端的 水平偏转角, 包括:
获取所述投影终端初始位置与水平面的第一夹角, 检测所述投影终端 当前位置与水平面的第二夹角;
利用所述第二夹角减去所述第一夹角, 得到所述投影终端的水平偏转 角。
优选地, 上述实施例提供的图像调整方法还包括: 判断是否需要对所 述待投影图像进行修正。
为了解决上述问题, 本发明实施例还提供了一种投影终端, 所述投影 终端包括: 获取模块及修正模块;
所述获取模块, 配置为获取投影终端的水平偏转角; 轴, 对所述投影终端的待投影图像进行旋转修正。
优选地, 所述修正模块包括: 校正参数确定子模块、 校正基准点确定 子模块及旋转子模块,
所述校正参数确定子模块, 配置为根据水平偏转角与校正参数的对应 关系及所述水平偏转角, 确定所述待投影图像的校正参数;
所述校正基准点确定子模块, 配置为根据所述投影光轴与待投影图像 的对应关系, 确定所述待投影图像的校正基准点;
所述旋转子模块, 配置为以所述校正基准点为中心, 根据所述校正参 数对所述待投影图像进行旋转修正。
优选地, 所述校正参数确定子模块, 配置为获取所述水平偏转角的绝 对值, 并将获取到的绝对值作为所述校正参数。
优选地, 所述旋转子模块, 配置为对所述待投影图像逆向旋转所述校 正参数。
优选地, 所述获取模块, 配置为获取所述投影终端初始位置与水平面 的第一夹角, 检测所述投影终端当前位置与水平面的第二夹角, 利用所述 第二夹角减去所述第一夹角, 得到所述投影终端的水平偏转角。
优选地, 所述投影终端还包括判断模块, 配置为判断是否需要对待投 影图像进行修正, 并向所述修正模块输出判断结果。
本发明实施例的有益效果包括:
本发明实施例提供的图像修正方法及投影终端, 获取投影终端的水平 偏转角, 并利用所述水平旋转角通过对待投影图像进行旋转, 解决了投影
终端以投影光轴为中心旋转时所造成的投影画面失真问题, 同时, 由于修 正过程仅为旋转待投影图像, 不需要繁杂的图形校正算法进行修正, 成本 低, 修正速度快, 并且耗电少, 产热少, 大大增加了便携终端用户的使用 体验。 附图说明
图 1为投影终端进行投影的示意图;
图 2 ( a )〜图 2 ( d ) 为投影图像的示意图;
图 3为本发明第一实施例提供的图像修正方法的流程示意图; 图 4为本发明第二实施例提供的图像修正方法的流程示意图; 图 5为本发明第三实施例提供的投影终端的示意图;
图 6为本发明第四实施例中的图像^ ί'爹正方法的流程示意图;
图 7为本发明第四实施例的投影终端无抖动时的示意图;
图 8 为本发明第四实施例的投影终端发生抖动且未进行图像修正时的 示意图;
图 9 为本发明第四实施例的投影终端发生抖动且进行图像修正后的示 意图。 具体实施方式
本发明实施例所提供的图像调整方法可以应用于所有的具备投影功能 的投影终端上面, 如投影仪等专业设备; 较佳地, 将其运用到手机等具备 投影功能的便携智能终端上面, 下文以手机为例进行说明, 现通过具体实 施方式结合附图的方式对本发明实施例作进一步的诠释说明。
图 1为投影终端进行投影的示意图, 如图 1所示, 在用户对投影终端 11进行操作时, 可能会导致投影终端 11的抖动, 为便于说明, 在投影终端 11的常规使用时,设置如图 1中的 Χ-Υ-Ζ空间坐标系,投影终端 11的抖动
将带动投影终端投影光轴的抖动, 但是, 无论投影终端如何抖动, 都可以 将其拆分为以下 4个分量上的抖动:
投影终端 11在 X-Z平面上沿 X轴偏转, 导致投影光轴也在 X-Z平面 上沿 X轴偏转;
投影终端 11在 Y-Z平面上沿 Y轴偏转,导致投影光轴也在 Y-Z平面上 沿 Y轴偏转;
投影终端 11在 X-Y平面上沿 Z轴旋转, 此时投影光轴相对于 Z轴不 变;
投影终端 11在沿 Z轴前后移动, 此时投影光轴相对于 Z轴不变。
图 2 ( a )〜图 2 ( d ) 为投影图像的示意图, 如图 2所示可知: 图 2 ( a ) 为投影终端 11无任何偏转的正常显示的示意图。
若投影终端 11在 X-Z平面上沿正 X轴偏转,会导致投影图像向右偏转, 投影图像变长, 且为倒 "梯形", 如图 2 ( b )所示; 投影终端在 X-Z平面 上沿负 X轴偏转未示出, 可以预见的, 投影图像为左右对称的倒 "梯形"; 若投影终端 11在 Y-Z平面上沿正 Y轴偏转,会导致投影图像向上偏转, 投影图像变宽, 且为 "梯形", 如图 2 ( c )所示; 投影终端在 Y-Z平面上沿 负 Y轴偏转未示出, 可以预见的, 投影图像为上下对称的翻 "梯形";
若投影终端 11在 X-Y平面上沿 Z轴旋转, 由于投影光轴相对于 Z轴 不变, 投影图像不会发生变形失真, 但投影图像以投影终端的投影光轴为 中心进行旋转, 如图 2 ( d ) 所示;
若投影终端 11在沿 Z轴前后移动, 此时投影光轴相对于 Z轴不变, 投 影图像不会发生变形失真, 但会出现整体放大(投影终端向后移动) /缩小 (投影终端向前移动);
根据用户的阅读习惯, 当投影终端 11发生在 X-Z平面上沿 X轴偏转
/Y-Z平面上沿 Y轴偏转 /沿 Z轴前后移动时, 由于投影图像至少在 X-Z和 /
或 Y-Z平面上整齐, 并不会导致用户难以理解投影图像的内容; 但是, 当 投影终端 11在 Χ-Υ平面上沿 Ζ轴旋转时, 会导致整个投影图像发生旋转, 相对于原投影图像, 其在 Χ-Ζ和 Υ-Ζ平面都不整齐, 导致用户难以理解投 影图像的内容, 此时, 用户为了理解投影图像的内容, 就需要扭转头部以 保持与投影图像相同的旋转角来阅读图像内容, 严重的影响了用户的使用 体验;
综上所述, 当投影终端 11发生抖动时, 最佳的方案是在 4个分量上面 都进行修正, 但是, 如在背景技术部分所记载的那样, 这种修正方法并不 适用于手机等投影终端; 因此, 在同时兼顾及综合手机等制造成本、 耗能、 产热及用户使用体验的基础上, 本发明实施例提供了一种可以广泛的运用 到手机等投影终端中的投影图像修正方法。
图 3 为本发明第一实施例提供的图像修正方法的流程示意图, 由图 3 可知, 在本实施例中, 所述图像修正方法包括以下步骤:
步骤 301 : 获取投影终端的水平偏转角。
优选地, 所述获取投影终端的水平偏转角包括: 获取投影终端初始位 置与水平面的第一夹角, 检测投影终端当前位置与水平面的第二夹角; 利 用第二夹角减去第一夹角, 得到投影终端的水平偏转角。
步骤 302: 根据水平偏转角及投影终端的投影光轴,对投影终端的待投 影图像进行旋转修正; 投影终端将修正后的待投影图像图样出去。
本实施例中, 所述根据水平偏转角及投影终端的投影光轴, 对投影终 端的待投影图像进行旋转修正, 包括:
根据水平偏转角与校正参数的对应关系及水平偏转角, 确定待投影图 像的校正参数; 优选地, 水平偏转角与校正参数的对应关系为: 校正参数 为水平偏转角的绝对值;
根据投影光轴与待投影图像的对应关系, 确定待投影图像的校正基准
点;
以校正基准点为中心, 根据校正参数对待投影图像进行旋转、 修正; 优选地, 对待投影图像进行旋转的方式为逆向旋转。
图 4 为本发明第二实施例提供的图像修正方法的流程示意图, 由图 4 可知, 在本实施例中, 本发明提供的图像修正方法在包括步骤 301 及步骤 302的基础上, 还包括以下步骤:
步骤 401 : 获取投影终端的水平偏转角。
步骤 402:判断是否需要对待投影图像进行旋转;当判断的结果为是时, 执行步骤 403 ; 否则, 返回执行步骤 401。
步骤 403: 对投影终端的待投影图像进行旋转修正。
所述判断是否需要对待投影图像进行旋转具体包括: 根据投影终端的 水平偏转角来判断是否需要对待投影图像进行旋转修正; 如, 判断水平偏 转角是否大于一预设阈值: 如果水平偏转角大于或等于该预设阈值, 说明 如果不对投影图像进行旋转修正的话, 投影终端投影出来的图像将会影响 用户的浏览, 此时, 判断结果为需要对待投影图像进行旋转修正, 执行步 骤 403; 相应的, 当水平偏转角小于该预设阈值, 说明即使不对投影图像进 行旋转修正的话, 投影终端投影出来的图像也不会影响用户的浏览, 为了 降低投影终端的电量消耗, 此时, 判断结果为不需要对待投影图像进行旋 转修正, 返回步骤 401。
图 5为本发明第三实施例提供的投影终端的示意图; 由图 5可知, 在 本实施例中, 本发明提供的投影终端包括: 获取模块 51及修正模块 52, 其 中,
获取模块 51, 配置为获取投影终端的水平偏转角, 以供其他功能模块 使用, 如, 作为修正模块对待投影图像进行旋转修正的依据;
修正模块 52,配置为根据获取模块 51获取到的水平偏转角及投影终端
的投影光轴, 对投影终端的待投影图像进行旋转修正。
优选地, 所述修正模块 52包括: 校正参数确定子模块、 校正基准点确 定子模块及旋转子模块, 其中,
校正参数确定子模块, 配置为根据水平偏转角与校正参数的对应关系 及水平偏转角, 确定待投影图像的校正参数;
校正基准点确定子模块, 配置为根据投影光轴与待投影图像的对应关 系, 确定待投影图像的校正基准点;
旋转子模块, 配置为以校正基准点为中心, 根据校正参数对待投影图 像进行旋转、 修正。
优选地, 所述校正参数确定子模块, 配置为获取水平偏转角的绝对值, 并将获取到的绝对值作为校正参数。
优选地, 所述旋转子模块, 配置为对待投影图像逆向旋转校正参数。 优选地, 所述获取模块 51, 配置为获取投影终端初始位置与水平面的 第一夹角, 检测投影终端当前位置与水平面的第二夹角, 利用第二夹角减 去第一夹角, 得到投影终端的水平偏转角。
优选地, 所述投影终端还包括判断模块, 配置为根据水平偏转角判断 是否需要对待投影图像进行修正, 并向修正模块 52输出判断结果。
其中, 所述获取模块 51在实际应用中, 可由所述投影终端中的角度传 感器实现; 所述修正模块 52及其子模块: 校正参数确定子模块、 校正基准 点确定子模块及旋转子模块, 以及判断模块, 在实际应用中, 均可由所述 投影终端中的中央处理器(Central Processing Unit, CPU ), 或数字信号处 理器( Digital Signal Processor, DSP ),或可编程门阵列(Field-Programmable
Gate Array, FPGA ) 实现。
现结合具体应用实例对本发明实施例做进一步的诠释说明, 图 6为本 发明第四实施例中的图像修正方法的流程示意图; 参照图 6可知, 在第四
实施例中, 所述图像修正方法包括以下步骤:
步骤 601 : 设置预设阈值。
设置预设阈值的方式可以是由投影终端自行设置, 也可以由用户根据 需要进行设置, 设置预设阈值是为了避免投影终端实时都对待投影图像进 行修正所导致的电量浪费等问题, 现假定预设阈值 Th=4。 。
步骤 602: 设置投影终端的初始位置。
设置投影终端的初始位置为了后续计算投影终端的水平偏转角时使 用, 可以预见的是, 所述步骤 602是可以省去的, 仅需将水平面默认为投 影终端的初始位置即可, 对应的, 此时, 第一夹角 K1=0° 。
步骤 603: 获取投影终端的当前位置。
获取投影终端的当前位置是为了计算投影终端的水平偏转角, 在本实 施例中, 通过在投影终端中设置重力传感器来采集投影终端的偏转角数据, 现假定,重力传感器在 T1时刻检测到投影终端的当前位置与水平面的夹角 为 3° , 在 Τ2时刻检测到投影终端的当前位置与水平面的夹角为 6° 。
步骤 604: 计算投影终端的水平偏转角。
在 T1时刻时, 投影终端的当前位置与水平面的第二夹角 Κ2=3。 ; 此 时, 投影终端的水平偏转角 Δ Κ= Κ2-Κ1 =3° 。
在 Τ2时刻时, 投影终端的当前位置与水平面的第二夹角 Κ2, =3° ; 此时, 投影终端的水平偏转角 Δ Κ, = Κ2' -Kl =6° 。
步骤 605: 判断是否需要对待投影图像进行修正; 若需要, 则执行步骤 606, 若不需要, 则返回步骤 603, 继续执行本方法流程;
具体的是, 通过比较水平偏转角与预设阈值的大小关系来判断是否需 要对待投影图像进行修正, 本本应用实例中, 在 T1时刻, 由于 Δ Κ=3。 < Th, 判断结果为不需要对待投影图像进行修正, 返回步骤 603, 继续执行本 方法流程; 在 T2时刻, 由于 Δ Κ' =6° > Th, 判断结果为需要对待投影图
像进行修正, 执行步骤 606。
步骤 606: 确定待投影图像的校正参数。
根据水平偏转角与校正参数的对应关系及水平偏转角, 确定待投影图 像的校正参数, 在本应用实例中, 假定水平偏转角与校正参数的对应关系 为校正参数为水平偏转角的绝对值; 如, 在本应用实例中, 在 T2时刻, 水 平偏转角 Δ Κ, = 6° , 此时, 确定的校正参数为 6° 。
步骤 607: 确定待投影图像的校正基准点。
由于投影终端的抖动可能会导致投影终端的投影光轴的移动 (上下左 右), 因此, 为了保证最终投影图像的水平, 需要确定待投影图像的校正基 准点, 具体方法为: 根据投影光轴与待投影图像的对应关系, 确定待投影 图像的校正基准点, 一般的, 将投影终端的投影光轴在待投影图像上的对 应点作为校正基准点。
步骤 608: 对待投影图像进行旋转修正。
具体方法为: 以校正基准点为中心, 根据校正参数对待投影图像进行 旋转修正, 可以是通过坐标的空间位移转换来实现对待投影图像的旋转; 对待投影图像进行旋转的方式可以为逆向旋转。
步骤 609: 将修正后的待投影图像投影出去。
图 7为第四实施例的投影终端无抖动时的示意图, 图 8为第四实施例 的投影终端发生抖动且未进行图像修正时的示意图, 图 9 为第四实施例的 投影终端发生抖动且进行图像修正后的示意图; 由图 7至图 9可知:
在图 7 中, 投影终端没有在 Χ-Υ平面上沿 Ζ轴旋转时, 投影终端 11 位置与水平面平行, 其待投影图像上边与水平面平行, 其投影出来的投影 图像的上边与水平面平行;
当投影终端在 Χ-Υ平面上沿 Ζ轴发生了旋转时, 若不对待投影图像进 行旋转修正, 则其投影结果如图 8所示, 在图 8中, 投影终端 11位置与水
平面存在水平偏转角 Δ Κ, 其待投影图像上边与水平面存在水平偏转角 Δ Κ, 其投影出来的投影图像的上边与水平面存在水平偏转角 Δ Κ; 此时, 假 定步骤 605的判断结果为需要对待投影图像进行修正, 将执行步骤 606至 步骤 609, 参考图 9可知:
步骤 606的执行结果是将校正参数确定为旋转 Δ Κ;
步骤 607的执行结果是将图 9中待投影图像内的 "0点" 作为校正基 准点;
步骤 608的执行结果是将待投影图像以 "0点" 为中心逆向旋转 Δ Κ, 形成图 9中所示的待投影图像;
步骤 609的执行结果是投影出如图 9所示的投影图像, 在图 9中, 投 影终端的投影光轴没有发生上下 (沿 X轴)左右 (沿 Υ轴 )移动, 因此, 其投影图像也没有发生上下左右移动; 相应的, 若投影终端的投影光轴发 生了上下 (沿 X轴)左右 (沿 Υ轴 )移动, 其投影图像也会如图 2所示的 那样发生上下左右移动和拉伸, 但是, 其并不会影响用户的阅读。
综上可知, 通过本发明的实施, 至少存在以下有益效果:
首先, 获取投影终端的水平偏转角, 并利用该水平旋转角通过对待投 影图像进行旋转, 解决了投影终端以投影光轴为中心旋转时所造成的投影 画面失真问题, 同时, 由于修正过程仅为旋转待投影图像, 不需要繁杂的 图形校正算法进行修正, 成本低, 修正速度快, 并且耗电少, 产热少, 大 大增加了便携终端用户的使用体验;
再次, 设置预设阈值, 根据预设阈值及投影终端的水平偏转角的大小, 来判断是否进行旋转修正, 仅在水平偏转角大于或等于预设阈值时, 对待 投影图像进行旋转修正, 避免了频繁修正待投影图像对投影终端电量的浪 费。
以上仅是本发明的具体实施方式而已, 并非对本发明做任何形式上的
等同变化或修饰, 均仍属于本发明技术方案的保护范围。 工业实用性
本发明实施例通过获取投影终端的水平偏转角, 并利用所述水平旋转 角通过对待投影图像进行旋转, 解决了投影终端以投影光轴为中心旋转时 所造成的投影画面失真问题, 同时, 由于修正过程仅为旋转待投影图像, 不需要繁杂的图形校正算法进行修正, 成本低, 修正速度快, 并且耗电少, 产热少, 大大增加了便携终端用户的使用体验。
Claims
1、 一种用于投影终端的图像修正方法, 所述方法包括:
获取投影终端的水平偏转角;
根据所述水平偏转角及所述投影终端的投影光轴 , 对所述投影终端的 待投影图像进行旋转修正。
2、 根据权利要求 1所述的图像修正方法, 其中, 所述根据所述水平偏 转角及所述投影终端的投影光轴, 对所述投影终端的待投影图像进行旋转 修正, 包括:
根据水平偏转角与校正参数的对应关系及所述水平偏转角, 确定所述 待投影图像的校正参数;
根据所述投影光轴与待投影图像的对应关系, 确定所述待投影图像的 校正基准点;
以所述校正基准点为中心, 根据所述校正参数对所述待投影图像进行 旋转修正。
3、 根据权利要求 2所述的图像修正方法, 其中, 所述水平偏转角与校 正参数的对应关系为: 所述校正参数为所述水平偏转角的绝对值。
4、 根据权利要求 2所述的图像修正方法, 其中, 所述对所述待投影图 像进行旋转的方式为逆向旋转。
5、 根据权利要求 1所述的图像修正方法, 其中, 所述获取投影终端的 水平偏转角, 包括:
获取所述投影终端初始位置与水平面的第一夹角 , 检测所述投影终端 当前位置与水平面的第二夹角;
利用所述第二夹角减去所述第一夹角 , 得到所述投影终端的水平偏转 角。
6、 根据权利要求 1至 5任一项所述的图像修正方法, 其中, 所述方法
还包括: 判断是否需要对所述待投影图像进行修正。
7、 一种投影终端, 所述投影终端包括: 获取模块及修正模块, 所述获取模块, 配置为获取投影终端的水平偏转角;
所述修正模块, 配置为根据所述水平偏转角及所述投影终端的投影光 轴, 对所述投影终端的待投影图像进行旋转修正。
8、 根据权利要求 7所述的投影终端, 其中, 所述修正模块包括: 校正 参数确定子模块、 校正基准点确定子模块及旋转子模块 ,
所述校正参数确定子模块, 配置为根据水平偏转角与校正参数的对应 关系及所述水平偏转角, 确定所述待投影图像的校正参数;
所述校正基准点确定子模块, 配置为根据所述投影光轴与待投影图像 的对应关系, 确定所述待投影图像的校正基准点;
所述旋转子模块, 配置为以所述校正基准点为中心, 根据所述校正参 数对所述待投影图像进行旋转修正。
9、根据权利要求 8所述的投影终端,其中, 所述校正参数确定子模块, 配置为获取所述水平偏转角的绝对值, 并将获取到的绝对值作为所述校正 参数。
10、 根据权利要求 8所述的投影终端, 其中, 所述旋转子模块, 配置 为对所述待投影图像逆向旋转所述校正参数。
11、 根据权利要求 7 所述的投影终端, 其中, 所述获取模块, 配置为 获取所述投影终端初始位置与水平面的第一夹角 , 检测所述投影终端当前 位置与水平面的第二夹角, 利用所述第二夹角减去所述第一夹角, 得到所 述投影终端的水平偏转角。
12、 根据权利要求 7至 11任一项所述的投影终端, 其中, 所述投影终 端还包括判断模块, 配置为判断是否需要对待投影图像进行修正, 并向所 述修正模块输出判断结果。
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