WO2012159568A1 - 触摸控制方法、装置及电子设备 - Google Patents
触摸控制方法、装置及电子设备 Download PDFInfo
- Publication number
- WO2012159568A1 WO2012159568A1 PCT/CN2012/075960 CN2012075960W WO2012159568A1 WO 2012159568 A1 WO2012159568 A1 WO 2012159568A1 CN 2012075960 W CN2012075960 W CN 2012075960W WO 2012159568 A1 WO2012159568 A1 WO 2012159568A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- contact area
- area
- determining
- instruction
- interval
- Prior art date
- Legal status (The legal status 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 status listed.)
- Ceased
Links
Classifications
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/048—Interaction techniques based on graphical user interfaces [GUI]
- G06F3/0484—Interaction techniques based on graphical user interfaces [GUI] for the control of specific functions or operations, e.g. selecting or manipulating an object, an image or a displayed text element, setting a parameter value or selecting a range
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/048—Interaction techniques based on graphical user interfaces [GUI]
- G06F3/0487—Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser
- G06F3/0488—Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures
- G06F3/04883—Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures for inputting data by handwriting, e.g. gesture or text
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/048—Interaction techniques based on graphical user interfaces [GUI]
- G06F3/0487—Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser
- G06F3/0488—Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures
- G06F3/04886—Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures by partitioning the display area of the touch-screen or the surface of the digitising tablet into independently controllable areas, e.g. virtual keyboards or menus
Definitions
- the invention belongs to the field of electronics, and in particular relates to a touch control method, device and electronic device. Background technique
- touch control devices instead of traditional input devices such as mice or keyboards.
- touch control devices When working, it only needs to operate on the touch surface with a finger or other object, and the system can position the selection information input according to the touch position.
- touch control devices Different from the technical principle, the types of technologies used in touch control devices include: pressure sensing technology, resistance technology, capacitance technology, infrared technology, and surface acoustic wave technology. Each type of touch control device has its own advantages. And shortcomings.
- the touch control device based on the pressure sensing technology can utilize the principle that the contact surface area changes when the human finger is pressed, and the touch sensor can identify the contact surface area, thereby determining the pressure exerted by the user on the touch sensor, and at the same time, setting An area interval, each area interval corresponding to a sequence of instructions.
- the contact area is found to be in an interval according to the detected data, the corresponding pressure is recognized, and the corresponding instruction is triggered and executed.
- the command is triggered by the absolute value of the touch area, but considering the difference of the operator of the electronic device, such as the user of the mobile phone may be a child of a few years, it may be Adults, on average, children's fingers are much smaller than adults' fingers. Therefore, for a contact area (such as 10 units), adults may easily achieve it, but children may be harder due to smaller fingers. The pressure does not reach the threshold of the contact area, causing the trigger to fail.
- the thumb Since, in general, the area of the thumb is larger than the area of other fingers, if the user is accustomed to using other fingers, the thumb may be used to trigger a successful design, which may cause a trigger failure when pressed with a little finger. Summary of the invention
- an embodiment of the present invention provides a touch control method for an electronic device, the electronic device having a touch surface and a sensor, wherein the touch control method includes: according to the sensor The collected data determines a first contact area and a second contact area, wherein the first contact area and the second contact area are areas of the area where the touch surface contacts the pointing object at different times; according to the first contact area and the The two contact areas determine a first correspondence relationship with the area change amount, and determine and execute the first instruction sequence corresponding to the instruction determination parameter interval in which the first instruction determination parameter is located.
- the first command determining parameter is the area change amount
- the command determining parameter interval is an area change interval
- the first contact area and the second contact area are respectively an area of the area where the touch surface contacts the pointing object at the first time and the second time
- the first instruction determining parameter is based on The first contact area change rate determined by the area change amount and the time change amount
- the command determination parameter interval is an area change rate interval
- the first time instant is a time when a predetermined length of time has elapsed after detecting that the pointing object is in contact with the touch surface.
- a plurality of correspondences are pre-stored in the electronic device, each corresponding relationship corresponds to a different area interval, and the first corresponding relationship is the plurality of corresponding relationships, Corresponding relationship corresponding to the area interval in which the contact area is located; in the plurality of correspondences, there is at least one instruction sequence corresponding to different contact area change rates.
- the method before determining and executing the first instruction corresponding to the contact area change rate interval in which the first contact area change rate is located, the method further includes: collecting data according to the sensor After determining that the pointing object is in contact with the touch surface, the second instruction is executed.
- the step of executing the second instruction specifically includes: determining a pointing point according to the data collected by the sensor When the object is in contact with the touch surface, determining a current contact area according to the data collected by the sensor; determining whether the current contact area is greater than a predetermined threshold; The second instruction is executed when the contact area is greater than a predetermined threshold.
- an embodiment of the present invention provides a touch control device for an electronic device, the electronic device having a touch surface and a sensor, wherein the touch control device includes: an area determining module, configured to The data collected by the sensor determines a first contact area and a second contact area, wherein the first contact area and the second contact area are areas of the area where the touch surface contacts the pointing object at different times; the instruction parameter determining module is used Determining, according to the first contact area and the second contact area, a first instruction determining parameter related to the area change amount; the first processing module, configured to execute the instruction determining parameter interval corresponding to the first instruction determining parameter The first instruction sequence.
- the first command determining parameter is the area change amount
- the command determining parameter interval is an area change interval
- the first contact area and the second contact area are respectively an area of the area where the touch surface contacts the pointing object at the first time and the second time
- the first instruction determining parameter is based on The first contact area change rate determined by the area change amount and the time change amount
- the command determination parameter interval is an area change rate interval
- the first time instant is a time when a predetermined length of time has elapsed after detecting that the pointing object is in contact with the touch surface.
- a plurality of correspondences are pre-stored in the electronic device, each corresponding relationship corresponds to a different area interval, and the first corresponding relationship is the plurality of corresponding relationships, Corresponding relationship corresponding to the area interval in which the contact area is located; in the plurality of correspondences, there is at least one instruction sequence corresponding to different contact area change rates.
- the method further includes: a second processing module, configured to perform, at the first processing module, a section corresponding to a contact area change rate interval in which the first contact area change rate is determined and executed Before an instruction, after determining that the pointing object is in contact with the touch surface according to the data collected by the sensor, executing the second instruction.
- a second processing module configured to perform, at the first processing module, a section corresponding to a contact area change rate interval in which the first contact area change rate is determined and executed Before an instruction, after determining that the pointing object is in contact with the touch surface according to the data collected by the sensor, executing the second instruction.
- the second processing module specifically includes: configured to determine, according to the data collected by the sensor, the current contact according to the data collected by the sensor when the pointing object is in contact with the touch surface a unit of area; a unit for determining whether the current contact area is greater than a predetermined threshold; and means for executing the second instruction when the current contact area is greater than a predetermined threshold.
- an embodiment of the present invention provides an electronic device, the electronic device having a touch surface, wherein the electronic device further includes: a sensor; a storage module, configured to store an instruction determining a parameter interval and a sequence of instructions a first correspondence relationship between the processor and the sensor and the storage module, configured to determine a first contact area and a second contact area according to the data collected by the sensor, and according to the first contact Determining, by the area and the second contact area, a first instruction determining parameter related to the area change amount, determining, according to the first correspondence relationship stored in the storage module, determining and executing the instruction corresponding to the parameter determining parameter interval in which the first instruction determining parameter is located
- the first contact area and the second contact area are areas of a region where the touch surface contacts the pointing object at different times.
- the processor specifically includes: an area determining module, connected to the sensor, configured to determine, according to the data collected by the sensor, a first contact area and a second contact area, where a contact area and a second contact area are areas of the area where the touch surface contacts the pointing object at different times; the command parameter determining module is connected to the area determining module, and is configured to determine a pair according to the first contact area and the second contact area a first instruction determining parameter related to the area change amount; a first processing module, connected to the instruction parameter determining module and the storage module, configured to
- the first command determining parameter is the area change amount
- the command determining parameter interval is an area change interval
- the first contact area and the second contact area are the areas of the area where the touch surface contacts the pointing object at the first time and the second time
- the first instruction determining parameter is The first contact area change rate determined by the area change amount and the time change amount, wherein the command determination parameter interval is an area change rate interval.
- the first time instant is a time when a predetermined length of time has elapsed after detecting that the pointing object is in contact with the touch surface.
- the parameter related to the amount of area change is used to trigger the touch control, and the parameter related to the area change amount can avoid the problem of trigger failure caused by the difference in the size of the pointing object, and improve The success rate of the trigger.
- the triggering of the touch control is performed using the area change rate.
- Using the parameters related to the area change can avoid the trigger failure caused by the size of the finger, and improve the success rate of the trigger.
- the area change rate reaches a certain value, it does not need to undergo a large to small change. The process, therefore, can be applied to multi-segment control.
- the multi-segment touch button can be implemented in combination with the touch area determination trigger.
- FIG. 1 is a schematic flow chart of a touch control method according to an embodiment of the present invention.
- FIG. 2 is a schematic structural diagram of a touch control device according to an embodiment of the present invention. detailed description
- the trigger control is performed by using a parameter related to the amount of change in the touch area, and the success rate of the touch control is improved.
- the touch control method of the embodiment of the present invention is used for an electronic device, the electronic device has a touch surface and a sensor, and the method includes:
- Step 11 Determine a first contact area and a second contact area according to the data collected by the sensor, where the first contact area and the second contact area are areas of contact areas at different times when the touch surface contacts the pointing object ;
- Step 12 Calculate a first instruction determination parameter related to the area change amount according to the first contact area and the second contact area; and determine, and execute, the instruction corresponding to the instruction determination parameter interval in which the first instruction determination parameter is located A sequence of instructions.
- the parameter related to the amount of change in area is used to trigger the touch control, and the parameter related to the area change amount can avoid the problem of trigger failure due to the size of the finger, and the trigger is improved. Success rate.
- a first instruction determining parameter related to the amount of change in area wherein the first instruction determining parameter can be implemented in a plurality of manners, as described below.
- the first instruction determining parameter is the area change amount, and the two are the same object, which are the difference between the second contact area and the first contact area, and at this time, the instruction determines that the parameter interval is an area and a variable Interval.
- the area change is greater than or equal to 2 unit areas corresponding to one photographing instruction.
- each unit area may be set as needed, and does not represent a certain value, but is merely an example.
- the area is changed by the area change rate, wherein the first contact area and the second contact area are respectively the area of the contact area at the first moment and the second moment when the touch surface is in contact with the pointing object,
- the first command determining parameter is a first contact area change rate determined according to the area change amount and the time change amount
- the command determining parameter interval is an area change rate interval.
- the area change rate is greater than or equal to 2 corresponding to a photographing instruction.
- the absolute contact area cannot be made very large. However, it can increase the area change rate by shortening the occurrence time of the area change amount, and realize the triggering and execution of the instruction.
- the first instruction determining parameter is the area change amount, and the two are the same object.
- the trigger may be caused, and the example may be . Assume that for a camera-related button, the following correspondence is set: Area change is less than
- 10 unit areas correspond to one photographing instruction
- the area change is greater than or equal to 10 unit areas corresponding to one photographing instruction. Since the area change is greater than or equal to 10 unit areas, the area change must be less than 10 unit areas, which may result in During the process, a triggering photo command is triggered, and then the shooting command is triggered, and a false trigger occurs.
- the area change rate is used to avoid the above-mentioned false triggering situation, which is described in detail below.
- an area change rate of less than 10 corresponds to a photographing instruction
- an area change greater than or equal to 10 corresponds to a photographing instruction, at which time the user can control the speed of the pointing object deformation. (Press the force) to trigger the corresponding command without false triggering.
- the button can be pressed with a small force. Because the power is small, the change rate of the contact area is small at this time (the same area change requires more time), so the photo will be triggered. Command, and when the user needs to trigger the shooting command, the button can be pressed with a large force. Because of the large force, the rate of change of the contact area is large at this time (the time required for the same area change is less), so Triggering the shooting command, and the area change rate is equivalent to the concept of an acceleration. There is no case where a large area change rate must pass a small area change rate, so it is not triggered by mistake.
- the method of using the absolute value of the contact area different from the prior art involves only one time point, because the data used for judging the trigger is either a contact area change amount or a contact area.
- the rate of change which involves a starting point and an ending point.
- the first moment may be a moment when the pointing object is detected to be in contact with the touch surface, but the pointing object may also be detected.
- the first time mentioned above is a time when a predetermined length of time has elapsed after the pointing object is touched with the touch surface, and the false trigger in the other case can be avoided, as exemplified below.
- the button is pressed by the user or other pointing object unconsciously.
- the contact area change rate/contact area change amount is relatively large, and the trigger threshold is reached, but at this time, only the user's misoperation is not true.
- I want to trigger if I set a delay time, due to this false trigger The situation is very fast. After a short time, a limit is reached. The subsequent area change/contact area change rate cannot be sustained, but falls below the threshold, so it does not trigger, and the user wants to trigger. You can press the button with a small force first, and increase the force after a certain time to press the button.
- a plurality of corresponding relationships may be pre-stored, each corresponding relationship corresponding to a different area interval, where the first corresponding relationship is an area of the plurality of corresponding relationships, where the first contact area is located Corresponding relationship corresponding to the interval; in the plurality of correspondences, at least one instruction sequence exists, corresponding to different contact area change rates.
- the contact area When a child touches, the contact area may be up to 30, and the contact area between the adult's finger and the touch surface is easily over 30.
- the correspondence relationship 2 is set for the adult
- the corresponding relationship 1 is set for the child. Determining whether to select the correspondence 1 or the correspondence 2 according to the interval in which the contact area is located, and then performing the subsequent triggering process according to the correspondence between the area change rate interval and the instruction sequence in the correspondence 1 or 2, which has been previously detailed Introduction, no more details here.
- the segmentation operation can also be realized by combining with the absolute value of the contact area, which is described below.
- the first is determined and executed.
- the method further includes: executing the second instruction after determining that the pointing object is in contact with the touch surface according to the data collected by the sensor.
- the step of executing the second instruction specifically includes:
- the second instruction is executed when the current contact area is greater than a predetermined threshold.
- the set area change rate is greater than 50 and corresponds to the camera command.
- the contact area will exceed a threshold (can be set as small as needed), but the change The rate is very small.
- the command of focus adjustment is determined and executed according to the contact area, but the photographing instruction is not triggered.
- the finger presses hard At this time, the contact area change rate is greater than 50, and the photograph is triggered. Instruction, this method is suitable for forming a two-stage operation.
- the time at which the second command is executed may be taken as the first time, and then the determination of the contact area change rate may be made using the time as the starting point.
- the touch control device of the embodiment of the present invention is used for an electronic device, the electronic device has a touch surface and a sensor, and the touch control device is as shown in FIG. 2, and includes:
- An area determining module configured to determine a first contact area and a second contact area according to the data collected by the sensor, where the first contact area and the second contact area are different moments when the touch surface is in contact with the pointing object The area of the contact area;
- An instruction parameter determining module configured to determine, according to the first contact area and the second contact area, a first correspondence determining parameter related to the area change amount; determining and executing the first instruction determining parameter The instruction determines a first instruction sequence corresponding to the parameter interval.
- the first command determining parameter is the area change amount
- the command determining parameter interval is an area change interval.
- the first contact area and the second contact area are respectively an area of a contact area at a first time and a second time when the touch surface is in contact with the pointing object
- the command determining parameter interval is an area change rate interval for the first contact area change rate determined according to the area change amount and the time change amount.
- the first time is a time when a predetermined length of time has elapsed after the pointing object is touched by the touch surface.
- the electronic device stores a plurality of corresponding relationships in advance, each corresponding relationship corresponds to a different area interval, and the first corresponding relationship is the first contact, the first contact Corresponding relationship corresponding to the area interval in which the area is located; in the plurality of correspondences, there is at least one instruction sequence corresponding to different contact area change rates.
- the touch control device described above further comprising:
- a second processing module configured to: collect data according to the sensor before the first processing module performs a first instruction corresponding to determining and executing a contact area change rate interval in which the first contact area change rate is located After determining that the pointing object is in contact with the touch surface, the second instruction is executed.
- the second processing module specifically includes:
- the electronic device of the embodiment of the invention has a touch surface, and the electronic device further includes: a sensor;
- a storage module configured to store a first correspondence between the parameter determination parameter interval and the instruction sequence
- a processor connected to the sensor and the storage module, configured to determine the first contact according to the data collected by the sensor An area and a second contact area, and determining a first instruction determining parameter related to the area change amount according to the first contact area and the second contact area, determining and executing the first correspondence according to the first correspondence stored in the storage module
- the first instruction determines that the parameter where the parameter is located determines a first instruction sequence corresponding to the parameter interval, and the first contact area and the second contact area are areas of the contact area at different times when the touch surface is in contact with the pointing object.
- the processor specifically includes: An area determining module, coupled to the sensor, configured to determine a first contact area and a second contact area according to the data collected by the sensor, where the first contact area and the second contact area are when the touch surface contacts the pointing object The area of the contact area at different times;
- the command parameter determining module is connected to the area determining module, and configured to determine a first command determining parameter related to the area change amount according to the first contact area and the second contact area;
- a first processing module configured to be connected to the instruction parameter determining module and the storage module, configured to determine a first correspondence between the parameter interval and the instruction sequence according to the pre-stored instruction, and determine and execute the first instruction determining parameter as The area change amount, the command determination parameter interval is an area change interval.
- the first contact area and the second contact area are respectively an area of a contact area at a first moment and a second moment when the touch surface is in contact with the pointing object, and the first command determining parameter is according to the area change amount and The first contact area change rate determined by the amount of time change, the command determining parameter interval being an area change rate interval.
- the first moment may be a moment when a predetermined length of time has elapsed after the pointing object is contacted with the touch surface.
- the processor is further configured to: before the first processing module performs determining and executing the first instruction corresponding to the contact area change rate interval where the first contact area change rate is located, the data collected according to the sensor After determining that the pointing object is in contact with the touch surface, the second instruction is executed.
- the modules may be implemented in software for execution by various types of processors.
- an identified executable code module can comprise one or more physical or logical blocks of computer instructions, which can be constructed, for example, as an object, procedure, or function. Nonetheless, the executable code of the identified modules need not be physically located together, but may include different instructions stored in different bits. When these instructions are logically combined, they form a module and implement the specifications of the module. purpose.
- the executable code module can be a single instruction or a number of instructions, and can even be distributed across multiple different code segments, distributed among different programs, and distributed across multiple memory devices.
- operational data may be identified within the module and may be implemented in any suitable form and organized within any suitable type of data structure. The operational data may be collected as a single data set or may be distributed at different locations (including on different storage devices) And) can exist, at least in part, only as an electronic signal on a system or network.
- the module can be implemented by software, considering the level of the existing hardware process, the module can be implemented in software. Without considering the cost, a person skilled in the art can construct a corresponding hardware circuit to implement the corresponding function.
- the hardware circuit includes conventional ultra-large scale integration
- VLSI voltage-sensitive integrated circuits
- gate arrays and existing semiconductors such as logic chips, transistors or other discrete components.
- Modules can also be implemented with programmable hardware devices such as field programmable gate arrays, programmable array logic, programmable logic devices, and the like.
Landscapes
- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Theoretical Computer Science (AREA)
- Human Computer Interaction (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Position Input By Displaying (AREA)
- User Interface Of Digital Computer (AREA)
Abstract
本发明的目的在于提供一种触摸控制方法装置及电子设备,所述触摸控制方法用于一电子设备,所述电子设备具有一触摸面以及一传感器,其特征在于,所述触摸控制方法包括:根据所述传感器采集到的数据确定第一接触面积和第二接触面积,所述第一接触面积和第二接触面积为不同时刻触摸面与指点物接触的区域的面积;根据所述第一接触面积和第二接触面积确定一与面积变化量相关的第一指令确定参数;根据预先存储的指令确定参数区间与指令序列之间的第一对应关系,确定并执行所述第一指令确定参数所在的指令确定参数区间对应的第一指令序列。
Description
触摸控制方法、 装置及电子设备 技术领域
本发明属于电子领域, 特别涉及一种触摸控制方法、 装置及电子设备。 背景技术
为了操作上的方便, 目前很多的电子设备都釆用触摸控制设备来代替鼠 标或键盘等传统输入设备。 工作时, 只需要用手指或其它物体在触摸面上操 作, 即可由系统根据触摸位置来定位选择信息输入。
从技术原理来区别的话, 触摸控制设备所釆用的技术类型包括: 压力传 感技术、 电阻技术、 电容技术、 红外线技术以及表面声波技术等, 每种类型 的触摸控制设备都有其各自的优点和缺点。
基于压力传感技术的触摸控制设备中, 可以利用人手指施压时, 接触面 面积发生改变的原理, 利用触摸传感器可识别接触面面积, 进而判断用户作 用在触摸传感器上的压力, 同时, 设置一个面积区间, 每一个面积区间与一 个指令序列对应, 当根据检测到的数据发现接触面积位于一区间时, 识别为 相应的压力, 触发并执行相应的指令。
然而, 发明人在实现本发明实施例的过程中发现, 现有技术至少存在触 发控制不灵活的缺点, 说明如下:
由于现有的基于触摸面积的触摸控制技术中, 以触摸面积的绝对值来触 发指令, 但考虑到电子设备的操作者的不同, 如手机的使用者有可能是几岁 的小孩, 也有可能是成年人, 从平均水平来看, 小孩的手指远小于大人的手 指, 因此, 对于一个接触面积(如 10个单位的面积), 大人有可能很容易就 实现, 但小孩由于手指较小, 可能使劲按压也无法达到接触面积的门限, 导 致触发失败。
由于, 通常来说, 大拇指的面积大于其它手指的面积, 如果用户习惯使 用其它手指进行操作, 可能使用大拇指能够触发成功的设计, 在使用小拇指 按压时会导致触发失败。
发明内容
本发明实施例的目的在于提供一种触摸控制方法、 装置及电子设备, 提 高触摸控制操作的成功率。
为了实现上述目的, 本发明实施例提供了一种触摸控制方法, 用于一电 子设备, 所述电子设备具有一触摸面以及一传感器, 其特征在于, 所述触摸 控制方法包括: 根据所述传感器釆集到的数据确定第一接触面积和第二接触 面积, 所述第一接触面积和第二接触面积为不同时刻触摸面与指点物接触的 区域的面积; 根据所述第一接触面积和第二接触面积确定一与面积变化量相 的第一对应关系,确定并执行所述第一指令确定参数所在的指令确定参数区 间对应的第一指令序列。
此外, 根据本方面的一个实施例, 所述第一指令确定参数为所述面积变 化量, 所述指令确定参数区间为面积变化区间。
此外, 根据本方面的一个实施例, 所述第一接触面积和第二接触面积分 别为第一时刻和第二时刻触摸面与指点物接触的区域的面积, 所述第一指令 确定参数为根据所述面积变化量和时间变化量确定的第一接触面积变化率, 所述指令确定参数区间为面积变化率区间。
此外, 根据本方面的一个实施例, 所述第一时刻为检测到指点物与触摸 面接触之后经过预定时长的时刻。
此外, 根据本方面的一个实施例, 所述电子设备中预先存储有多个对应 关系, 每一个对应关系对应于不同的面积区间, 所述第一对应关系为所述多 个对应关系中, 第一接触面积所在的面积区间所对应的对应关系; 在所述多 个对应关系中, 至少存在一个指令序列, 对应于不同的接触面积变化率。
此外, 根据本方面的一个实施例, 在确定并执行所述第一接触面积变化 率所在的接触面积变化率区间所对应的第一指令之前, 还包括: 在根据所述 传感器釆集到的数据确定指点物与触摸面接触之后, 执行第二指令。
此外, 根据本方面的一个实施例, 在根据所述传感器釆集到的数据确定 指点物与触摸面接触之后, 执行第二指令的步骤具体包括: 在根据所述传感 器釆集到的数据确定指点物与触摸面接触时,根据所述传感器釆集到的数据 确定当前接触面积; 判断所述当前接触面积是否大于预定门限; 在所述当前
接触面积大于预定门限时, 执行所述第二指令。
此外, 本发明的实施例提供一种触摸控制装置, 用于一电子设备, 所述 电子设备具有一触摸面以及一传感器,其特征在于,所述触摸控制装置包括: 面积确定模块, 用于根据所述传感器釆集到的数据确定第一接触面积和第二 接触面积, 所述第一接触面积和第二接触面积为不同时刻触摸面与指点物接 触的区域的面积; 指令参数确定模块, 用于根据所述第一接触面积和第二接 触面积确定一与面积变化量相关的第一指令确定参数; 第一处理模块, 用于 执行所述第一指令确定参数所在的指令确定参数区间对应的第一指令序列。
此外, 根据本方面的一个实施例, 所述第一指令确定参数为所述面积变 化量, 所述指令确定参数区间为面积变化区间。
此外, 根据本方面的一个实施例, 所述第一接触面积和第二接触面积分 别为第一时刻和第二时刻触摸面与指点物接触的区域的面积, 所述第一指令 确定参数为根据所述面积变化量和时间变化量确定的第一接触面积变化率, 所述指令确定参数区间为面积变化率区间。
此外, 根据本方面的一个实施例, 所述第一时刻为检测到指点物与触摸 面接触之后经过预定时长的时刻。
此外, 根据本方面的一个实施例, 所述电子设备中预先存储有多个对应 关系, 每一个对应关系对应于不同的面积区间, 所述第一对应关系为所述多 个对应关系中, 第一接触面积所在的面积区间所对应的对应关系; 在所述多 个对应关系中, 至少存在一个指令序列, 对应于不同的接触面积变化率。
此外, 根据本方面的一个实施例, 还包括: 第二处理模块, 用于在所述 第一处理模块执行确定并执行所述第一接触面积变化率所在的接触面积变 化率区间所对应的第一指令之前 ,根据所述传感器釆集到的数据确定指点物 与触摸面接触之后, 执行第二指令。
此外, 根据本方面的一个实施例, 第二处理模块具体包括: 用于在根据 所述传感器釆集到的数据确定指点物与触摸面接触时,根据所述传感器釆集 到的数据确定当前接触面积的单元; 用于判断所述当前接触面积是否大于预 定门限的单元; 用于在所述当前接触面积大于预定门限时, 执行所述第二指 令的单元。
此外,本发明的实施例提供一种电子设备,所述电子设备具有一触摸面, 其特征在于, 所述电子设备还包括: 一传感器; 存储模块, 用于存储指令确 定参数区间与指令序列之间的第一对应关系; 处理器, 与所述传感器和所述 存储模块连接, 用于根据所述传感器釆集到的数据确定第一接触面积和第二 接触面积, 并根据所述第一接触面积和第二接触面积确定一与面积变化量相 关的第一指令确定参数, 根据存储模块中存储的第一对应关系, 确定并执行 所述第一指令确定参数所在的指令确定参数区间对应的第一指令序列, 所述 第一接触面积和第二接触面积为不同时刻触摸面与指点物接触的区域的面 积。
此外,根据本方面的一个实施例,所述处理器具体包括:面积确定模块, 与传感器连接, 用于根据所述传感器釆集到的数据确定第一接触面积和第二 接触面积, 所述第一接触面积和第二接触面积为不同时刻触摸面与指点物接 触的区域的面积; 指令参数确定模块, 与面积确定模块连接, 用于根据所述 第一接触面积和第二接触面积确定一与面积变化量相关的第一指令确定参 数; 第一处理模块, 与所述指令参数确定模块和存储模块连接, 用于根据预
此外, 根据本方面的一个实施例, 所述第一指令确定参数为所述面积变 化量, 所述指令确定参数区间为面积变化区间。
此外, 根据本方面的一个实施例, 所述第 接触面积和第二接触面积 别为第一时刻和第二时刻触摸面与指点物接触的区域的面积, 所述第一指令 确定参数为根据所述面积变化量和时间变化量确定的第一接触面积变化率, 所述指令确定参数区间为面积变化率区间。
此外, 根据本方面的一个实施例, 所述第一时刻为检测到指点物与触摸 面接触之后经过预定时长的时刻。
本发明实施例具有以下有益效果:
在本发明的具体实施例中,使用与面积变化量相关的参数来进行触摸控 制的触发, 而使用面积变化量相关的参数则可以避免由于指点物大小不同所 带来的触发失败的问题, 提高了触发的成功率。
在本发明的具体实施例中, 使用与面积变化率来进行触摸控制的触发,
使用面积变化量相关的参数则可以避免由于手指大小所带来的触发失败的 问题, 提高了触发的成功率, 而同时, 由于面积变化率达到一定的数值不需 要经历一个由大到小的变化过程, 因此, 可以适用于多段控制。
在本发明的具体实施例中,使用与面积变化率来进行触摸控制的触发时, 可以结合触摸面积判断触发的方式来实现多段触摸按键。
在本发明的具体实施例中, 通过延时控制, 也可以避免由于用户情绪问 题带来的重击误触发。 附图说明
图 1所示为本发明实施例的触摸控制方法的流程示意图;
图 2所示为本发明实施例的触摸控制装置的结构示意图。 具体实施方式
本发明实施例的触摸控制方法、 装置及电子设备中, 通过使用与触摸面 积的变化量相关的参数来进行触发控制, 提高触摸控制的成功率。
如图 1所示, 本发明实施例的触摸控制方法, 用于一电子设备, 所述电 子设备具有一触摸面以及一传感器, 所述方法包括:
步骤 11 ,根据所述传感器釆集到的数据确定第一接触面积和第二接触面 积, 所述第一接触面积和第二接触面积为触摸面与指点物接触时的不同时刻 的接触区域的面积;
步骤 12 ,根据所述第一接触面积和第二接触面积计算一与面积变化量相 关的第一指令确定参数; 关系,确定并执行所述第一指令确定参数所在的指令确定参数区间对应的第 一指令序列。
在本发明的具体实施例中,使用与面积变化量相关的参数来进行触摸控 制的触发, 而使用面积变化量相关的参数则可以避免由于手指大小所带来的 触发失败的问题, 提高了触发的成功率。
在本发明的具体实施例中,需要根据第一接触面积和第二接触面积确定
一与面积变化量相关的第一指令确定参数, 在此, 该第一指令确定参数可以 釆用多种方式来实现, 分别说明如下。
<实现方式一 >
所述第一指令确定参数为所述面积变化量, 二者是同一个对象, 都是第 二接触面积和第一接触面积的差值, 而此时, 该指令确定参数区间是一个面 积、变 区间。
对这种方式的实现具体说明如下。
假定针对一个拍照相关的按钮, 设置了如下的对应关系: 面积变化大于 或等于 2个单位面积对应于一个拍照指令。
由于此时指令的触发不再是依靠接触面积的绝对值, 而是与一个面积变 化量相关, 因此, 即使是小孩, 也可以通过手指的用力按压来实现触摸面积 的变化, 进而实现指令的执行。
在此, 应当说明的是, 对于不同的电子设备, 或者对于不同的操作物, 每一个单位面积具体是多少都可以根据需要设置,在此并不表示一个确定的 数值, 仅仅是一个举例说明。
<实现方式二 >
在实现方式二中, 釆用面积变化率来处理, 其中, 所述第一接触面积和 第二接触面积分别为在触摸面与指点物接触时第一时刻和第二时刻的接触 区域的面积, 所述第一指令确定参数为根据所述面积变化量和时间变化量确 定的第一接触面积变化率, 所述指令确定参数区间为面积变化率区间。
假定针对一个拍照相关的按钮, 设置了如下的对应关系: 面积变化率大 于或等于 2对应于一个拍照指令。
由于此时指令的触发不再是依靠接触面积的绝对值, 而是与一个面积变 化率(面积变化量与时间的商)相关, 因此, 即使是小孩, 其绝对接触面积 无法做到很大,但其可以通过缩短面积变化量的发生时间来提高面积变化率, 实现指令的触发和执行。
在实现方式一中, 所述第一指令确定参数为所述面积变化量, 二者是同 一个对象, 此时, 如果一个按钮对应了多个功能, 则可能会导致无触发, 举 例说明 ^下。
假定针对一个拍照相关的按钮, 设置了如下的对应关系: 面积变化小于
10个单位面积对应于一个拍照指令, 而面积变化大于或等于 10个单位面积 对应于一个摄影指令, 由于面积变化大于或等于 10个单位面积必然需要经 过面积变化小于 10个单位面积, 所以会导致过程中出现触发拍照指令, 然 后触发摄影指令的情况, 出现误触发。
在实现方式二中釆用面积变化率来处理则可以避免上述误触发情况的 出现, 详细说明如下。
假定针对一个拍照相关的按钮, 设置了如下的对应关系: 面积变化率小 于 10对应于一个拍照指令,而面积变化大于或等于 10对应于一个摄影指令, 此时用户就可以控制指点物形变的速度(按压力度)来触发对应的指令, 而 不会出现误触发的现象。
如用户需要触发拍照指令时, 可以使用较小的力量来按压按钮, 由于力 量较小, 所以此时接触面积的变化率较小(发生同样面积变化量需要更多的 时间), 所以会触发拍照指令, 而用户需要触发摄影指令时, 可以使用较大 的力量来按压按钮, 由于力量较大, 所以此时接触面积的变化率较大(发生 同样面积变化量需要的时间更少), 所以会触发摄影指令, 而面积变化率相 当于一个加速度的概念, 不会出现大的面积变化率必须经过小的面积变化率 的情况, 因此不会误触发。
在本发明的具体实施例中, 不同于现有技术的釆用接触面积绝对值的方 式, 只涉及到一个时间点, 由于用于判断触发的数据或者是一个接触面积变 化量, 或者是接触面积变化率, 其中都涉及到一个起始点和一个结束点, 在 本发明的具体实施例中, 上述的第一时刻可以是检测到指点物与触摸面接触 的时刻, 但也可以是检测到指点物与触摸面接触之后经过预定时长的时刻, 如检测到指点物与触摸面接触之后的 0.05s,当然,该 0.05s仅仅是一个举例, 该预定时长可以根据需要设置。
上述的第一时刻是检测到指点物与触摸面接触之后经过预定时长的时 刻的时候, 可以避免另一种情况下的误触发, 举例说明如下。
某些时候, 按钮被用户或其他指点物无意识用力快速按压, 此时, 该接 触面积变化率 /接触面积变化量会比较大,达到触发门限,但此时仅仅是用户 的误操作, 并不是真正想触发, 如果设置一个延时时间, 由于这种误触发的
情况都非常快,很短的时间之后就达到了一个极限,后续的面积变化量 /接触 面积变化率都无法持续, 而掉落到门限之下, 因此不会触发, 而用户想要触 发的时候, 可以先以较小的力量来按压按钮, 在一定时间之后增大力量来按 压按钮, 此时, 最开始的时间, 由于力量较小, 所以接触面积变化率 /接触面 积变化量都不足以触发按钮, 而由于之后力量较大, 所以此时接触面积的变 化率 /接触面积变化量较大, 所以会触发对应的指令。
当然, 在本发明的具体实施例中, 考虑到一个电子设备为不同的用户所 使用, 如一个家庭的平板电脑有可能为大人和小孩同时使用, 虽然上述的方 案已经能够解决大人和小孩由于手指大小不同所带来的触发失败的问题,但 大人与小孩的手指形状不同,同样还是会导致接触面积的变化率 /接触面积变 化量的不同, 虽然该不同远小于绝对面积的不同, 因此, 在本发明的具体实 施例中, 可以预先存储有多个对应关系, 每一个对应关系对应于不同的面积 区间, 所述第一对应关系为所述多个对应关系中, 第一接触面积所在的面积 区间所对应的对应关系; 在所述多个对应关系中, 至少存在一个指令序列, 对应于不同的接触面积变化率。
对以上的情况举例说明如下。
假定有用户 A (大人)和 B (小孩), 考虑到用户 A和 B的手指形状, 因此其触摸操作时的接触面积也有所不同, 此时设置如下的两组对应关系:
当小孩触摸时,其接触面积可能最大也只能到 30, 而大人的手指与触摸 面的接触面积艮容易超过 30 , 此时为大人设置对应关系 2 , 而为小孩设置对 应关系 1 , 后续可以根据接触面积所在的区间来决定选择对应关系 1还是对 应关系 2, 进而才艮据对应关系 1或 2中的面积变化率区间与指令序列的对应 关系来执行后续的触发流程, 其已经在之前详细介绍, 在此不再赘述。
当然, 本发明实施例中, 也可以通过与接触面积绝对值来结合实现分段 操作, 对此说明如下。
这种方式下, 本发明实施例的触摸控制方法中, 在确定并执行所述第一
接触面积变化率所在的接触面积变化率区间所对应的第一指令之前,还包括: 在根据所述传感器釆集到的数据确定指点物与触摸面接触之后,执行第 二指令。
在根据所述传感器釆集到的数据确定指点物与触摸面接触之后,执行第 二指令的步骤具体包括:
在根据所述传感器釆集到的数据确定指点物与触摸面接触时,根据所述 传感器釆集到的数据确定当前接触面积;
判断所述当前接触面积是否大于预定门限;
在所述当前接触面积大于预定门限时, 执行所述第二指令。
对这个以照相为例举例如下。
假定设置面积变化率大于 50与拍照指令对应, 当用户手指轻轻按压在 一个按钮之上, 但保持一定的压力时, 此时接触面积会超过一个门限(可以 根据需要设置较小), 但变化率很小, 此时会根据接触面积确定并执行焦距 调整的指令,但不会触发拍照指令,当用户觉得焦距合适时,手指用力按压, 此时, 接触面积变化率大于 50 , 就会触发拍照指令, 这种方式适于形成两段 式操作。
当然, 这种方式下, 如果考虑准确度, 可以将执行所述第二指令的时刻 作为第一时刻, 然后以该时刻作为起点来进行接触面积变化率的判断。
本发明实施例的触摸控制装置, 用于一电子设备, 所述电子设备具有一 触摸面以及一传感器, 该所述触摸控制装置如图 2所示, 包括:
面积确定模块, 用于根据所述传感器釆集到的数据确定第一接触面积和 第二接触面积, 所述第一接触面积和第二接触面积为在触摸面与指点物接触 时的不同时刻的接触区域的面积;
指令参数确定模块, 用于根据所述第一接触面积和第二接触面积确定一 与面积变化量相关的第一指令确定参数; 的第一对应关系,确定并执行所述第一指令确定参数所在的指令确定参数区 间对应的第一指令序列。
上述的触摸控制装置,其中,所述第一指令确定参数为所述面积变化量, 所述指令确定参数区间为面积变化区间。
上述的触摸控制装置, 其中, 所述第一接触面积和第二接触面积分别为 在触摸面与指点物接触时的第一时刻和第二时刻的接触区域的面积, 所述第 一指令确定参数为根据所述面积变化量和时间变化量确定的第一接触面积 变化率, 所述指令确定参数区间为面积变化率区间。
上述的触摸控制装置, 其中, 所述第一时刻为检测到指点物与触摸面接 触之后经过预定时长的时刻。
上述的触摸控制装置,其中,所述电子设备中预先存储有多个对应关系, 每一个对应关系对应于不同的面积区间, 所述第一对应关系为所述多个对应 关系中, 第一接触面积所在的面积区间所对应的对应关系; 在所述多个对应 关系中, 至少存在一个指令序列, 对应于不同的接触面积变化率。
上述的触摸控制装置, 其中, 还包括:
第二处理模块, 用于在所述第一处理模块执行确定并执行所述第一接触 面积变化率所在的接触面积变化率区间所对应的第一指令之前,根据所述传 感器釆集到的数据确定指点物与触摸面接触之后, 执行第二指令。
上述的触摸控制装置, 其中, 第二处理模块具体包括:
用于在根据所述传感器釆集到的数据确定指点物与触摸面接触时,根据 所述传感器釆集到的数据确定当前接触面积的单元;
用于判断所述当前接触面积是否大于预定门限的单元;
用于在所述当前接触面积大于预定门限时, 执行所述第二指令的单元。 本发明实施例的电子设备具有一触摸面, 所述电子设备还包括: 一传感器;
存储模块, 用于存储指令确定参数区间与指令序列之间的第一对应关系; 处理器, 与所述传感器和所述存储模块连接, 用于根据所述传感器釆集 到的数据确定第一接触面积和第二接触面积, 并根据所述第一接触面积和第 二接触面积确定一与面积变化量相关的第一指令确定参数 ,根据存储模块中 存储的第一对应关系,确定并执行所述第一指令确定参数所在的指令确定参 数区间对应的第一指令序列, 所述第一接触面积和第二接触面积为在触摸面 与指点物接触时的不同时刻的接触区域的面积。
所述处理器具体包括:
面积确定模块, 与传感器连接, 用于根据所述传感器釆集到的数据确定 第一接触面积和第二接触面积 , 所述第一接触面积和第二接触面积为在触摸 面与指点物接触时的不同时刻的接触区域的面积;
指令参数确定模块, 与面积确定模块连接, 用于根据所述第一接触面积 和第二接触面积确定一与面积变化量相关的第一指令确定参数;
第一处理模块, 与所述指令参数确定模块和存储模块连接, 用于根据预 先存储的指令确定参数区间与指令序列之间的第一对应关系,确定并执行所 所述第一指令确定参数为所述面积变化量, 所述指令确定参数区间为面 积变化区间。
所述第一接触面积和第二接触面积分别为在触摸面与指点物接触时的 第一时刻和第二时刻的接触区域的面积, 所述第一指令确定参数为根据所述 面积变化量和时间变化量确定的第一接触面积变化率, 所述指令确定参数区 间为面积变化率区间。
所述第一时刻可以是检测到指点物与触摸面接触之后经过预定时长的 时刻。
所述处理器还用于在所述第一处理模块执行确定并执行所述第一接触 面积变化率所在的接触面积变化率区间所对应的第一指令之前,根据所述传 感器釆集到的数据确定指点物与触摸面接触之后, 执行第二指令。
本发明实施例中,模块可以用软件实现,以便由各种类型的处理器执行。 举例来说, 一个标识的可执行代码模块可以包括计算机指令的一个或多个物 理或者逻辑块, 举例来说, 其可以被构建为对象、 过程或函数。 尽管如此, 所标识模块的可执行代码无需物理地位于一起, 而是可以包括存储在不同位 里上的不同的指令, 当这些指令逻辑上结合在一起时, 其构成模块并且实现 该模块的规定目的。
实际上, 可执行代码模块可以是单条指令或者是许多条指令, 并且甚至 可以分布在多个不同的代码段上, 分布在不同程序当中, 以及跨越多个存储 器设备分布。 同样地, 操作数据可以在模块内被识别, 并且可以依照任何适 当的形式实现并且被组织在任何适当类型的数据结构内。 所述操作数据可以 作为单个数据集被收集, 或者可以分布在不同位置上(包括在不同存储设备
上), 并且至少部分地可以仅作为电子信号存在于系统或网络上。
在模块可以利用软件实现时, 考虑到现有硬件工艺的水平, 所以可以以 软件实现的模块, 在不考虑成本的情况下, 本领域技术人员都可以搭建对应 的硬件电路来实现对应的功能, 所述硬件电路包括常规的超大规模集成
( VLSI )电路或者门阵列以及诸如逻辑芯片、 晶体管之类的现有半导体或者 是其它分立的元件。模块还可以用可编程硬件设备,诸如现场可编程门阵列、 可编程阵列逻辑、 可编程逻辑设备等实现。
以上所述仅为本发明的较佳实施例而已, 并不用以限制本发明, 凡在本 发明的精神和原则之内, 所作的任何修改、 等同替换、 改进等, 均应包含在 本发明的保护范围之内。
Claims
1. 一种触摸控制方法,用于一电子设备,所述电子设备具有一触摸面以 及一传感器, 其特征在于, 所述触摸控制方法包括:
根据所述传感器釆集到的数据确定第一接触面积和第二接触面积, 所述 第一接触面积和第二接触面积为不同时刻触摸面与指点物接触的区域的面 积;
根据所述第一接触面积和第二接触面积确定一与面积变化量相关的第 一指令确定参数; 定并执行所述第一指令确定参数所在的指令确定参数区间对应的第一指令 序列。
2. 根据权利要求 1所述的触摸控制方法,其特征在于, 所述第一指令确 定参数为所述面积变化量, 所述指令确定参数区间为面积变化区间。
3. 根据权利要求 1所述的触摸控制方法,其特征在于, 所述第一接触面 积和第二接触面积分别为第一时刻和第二时刻触摸面与指点物接触的区域 的面积, 所述第一指令确定参数为根据所述面积变化量和时间变化量确定的 第一接触面积变化率, 所述指令确定参数区间为面积变化率区间。
4. 根据权利要求 3所述的触摸控制方法,其特征在于, 所述电子设备中 预先存储有多个对应关系, 每一个对应关系对应于不同的面积区间, 所述第 一对应关系为所述多个对应关系中, 第一接触面积所在的面积区间所对应的 对应关系; 在所述多个对应关系中, 至少存在一个指令序列, 对应于不同的 接触面积变化率。
5. 根据权利要求 3所述的触摸控制方法,其特征在于, 所述第一时刻为 检测到指点物与触摸面接触之后经过预定时长的时刻。
6. 根据权利要求 5所述的触摸控制方法,其特征在于,在确定并执行所 述第一接触面积变化率所在的接触面积变化率区间所对应的第一指令之前, 还包括:
在根据所述传感器釆集到的数据确定指点物与触摸面接触之后,执行第 二指令。
7. 根据权利要求 6所述的触摸控制方法,其特征在于,在根据所述传感 器釆集到的数据确定指点物与触摸面接触之后,执行第二指令的步骤具体包 括:
在根据所述传感器釆集到的数据确定指点物与触摸面接触时,根据所述 传感器釆集到的数据确定当前接触面积;
判断所述当前接触面积是否大于预定门限;
在所述当前接触面积大于预定门限时, 执行所述第二指令。
8. 一种触摸控制装置,用于一电子设备,所述电子设备具有一触摸面以 及一传感器, 其特征在于, 所述触摸控制装置包括:
面积确定模块, 用于根据所述传感器釆集到的数据确定第一接触面积和 第二接触面积, 所述第一接触面积和第二接触面积为不同时刻触摸面与指点 物接触的区 i或的面积;
指令参数确定模块, 用于根据所述第一接触面积和第二接触面积确定一 与面积变化量相关的第一指令确定参数; 的第一对应关系,确定并执行所述第一指令确定参数所在的指令确定参数区 间对应的第一指令序列。
9. 根据权利要求 8所述的触摸控制装置,其特征在于, 所述第一指令确 定参数为所述面积变化量, 所述指令确定参数区间为面积变化区间。
10. 根据权利要求 8所述的触摸控制装置, 其特征在于, 所述第一接触 面积和第二接触面积分别为第一时刻和第二时刻触摸面与指点物接触的区 域的面积, 所述第一指令确定参数为根据所述面积变化量和时间变化量确定 的第一接触面积变化率, 所述指令确定参数区间为面积变化率区间。
11. 根据权利要求 10所述的触摸控制装置,其特征在于, 所述电子设备 中预先存储有多个对应关系, 每一个对应关系对应于不同的面积区间, 所述 第一对应关系为所述多个对应关系中, 第一接触面积所在的面积区间所对应 的对应关系; 在所述多个对应关系中, 至少存在一个指令序列, 对应于不同 的接触面积变化率。
12. 根据权利要求 10所述的触摸控制装置,其特征在于,所述第一时刻 为检测到指点物与触摸面接触之后经过预定时长的时刻。
13. 根据权利要求 12所述的触摸控制装置, 其特征在于, 还包括: 第二处理模块, 用于在所述第一处理模块执行确定并执行所述第一接触 面积变化率所在的接触面积变化率区间所对应的第一指令之前,根据所述传 感器釆集到的数据确定指点物与触摸面接触之后, 执行第二指令。
14. 根据权利要求 13所述的触摸控制装置,其特征在于,第二处理模块 具体包括:
用于在根据所述传感器釆集到的数据确定指点物与触摸面接触时,根据 所述传感器釆集到的数据确定当前接触面积的单元;
用于判断所述当前接触面积是否大于预定门限的单元;
用于在所述当前接触面积大于预定门限时, 执行所述第二指令的单元。
15. 一种电子设备, 所述电子设备具有一触摸面, 其特征在于, 所述电 子设备还包括:
一传感器;
处理器, 与所述传感器和所述存储模块连接, 用于根据所述传感器釆集 到的数据确定第一接触面积和第二接触面积, 并根据所述第一接触面积和第 二接触面积确定一与面积变化量相关的第一指令确定参数 ,根据存储模块中 存储的第一对应关系,确定并执行所述第一指令确定参数所在的指令确定参 数区间对应的第一指令序列, 所述第一接触面积和第二接触面积为不同时刻 触摸面与指点物接触的区域的面积。
16. 根据权利要求 15所述的电子设备,其特征在于,所述处理器具体包 括:
面积确定模块, 与传感器连接, 用于根据所述传感器釆集到的数据确定 第一接触面积和第二接触面积, 所述第一接触面积和第二接触面积为不同时 刻触摸面与指点物接触的区域的面积;
指令参数确定模块, 与面积确定模块连接, 用于根据所述第一接触面积 和第二接触面积确定一与面积变化量相关的第一指令确定参数;
17. 根据权利要求 15或 16所述的电子设备, 其特征在于, 所述第一指 令确定参数为所述面积变化量, 所述指令确定参数区间为面积变化区间。
18. 根据权利要求 15或 16所述的电子设备, 其特征在于, 所述第一接 触面积和第二接触面积分别为第一时刻和第二时刻触摸面与指点物接触的 区域的面积, 所述第一指令确定参数为根据所述面积变化量和时间变化量确 定的第一接触面积变化率, 所述指令确定参数区间为面积变化率区间。
19. 根据权利要求 18所述的电子设备, 其特征在于, 所述第一时刻为 检测到指点物与触摸面接触之后经过预定时长的时刻。
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US14/122,059 US9367156B2 (en) | 2011-05-24 | 2012-05-23 | Touch-control method, device, and electronic device |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201110135816.1A CN102799292B (zh) | 2011-05-24 | 2011-05-24 | 一种触摸控制方法、装置及电子设备 |
| CN201110135816.1 | 2011-05-24 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2012159568A1 true WO2012159568A1 (zh) | 2012-11-29 |
Family
ID=47198416
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/CN2012/075960 Ceased WO2012159568A1 (zh) | 2011-05-24 | 2012-05-23 | 触摸控制方法、装置及电子设备 |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US9367156B2 (zh) |
| CN (1) | CN102799292B (zh) |
| WO (1) | WO2012159568A1 (zh) |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN109328327A (zh) * | 2016-03-02 | 2019-02-12 | 氧化树脂涂料有限公司 | 用于非电子显示器基底表面的触摸敏感控制系统 |
| CN111026296A (zh) * | 2018-10-10 | 2020-04-17 | 佛山市顺德区美的洗涤电器制造有限公司 | 触摸按键的响应控制方法、装置及电器 |
Families Citing this family (16)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN103019596B (zh) * | 2012-12-07 | 2016-12-21 | Tcl通讯(宁波)有限公司 | 一种基于触摸屏实现虚拟按键操作的方法及移动终端 |
| US9258480B2 (en) * | 2014-03-31 | 2016-02-09 | Facebook, Inc. | Techniques to selectively capture visual media using a single interface element |
| CN105022561A (zh) * | 2014-04-30 | 2015-11-04 | 中国电信股份有限公司 | 触摸屏控制装置、方法和移动终端 |
| JP6553653B2 (ja) * | 2014-06-27 | 2019-07-31 | コーニンクレッカ フィリップス エヌ ヴェKoninklijke Philips N.V. | 出力制御を伴う家庭用電気器具 |
| KR20160045466A (ko) * | 2014-10-17 | 2016-04-27 | 삼성전자주식회사 | 디스플레이 장치, 이의 제어 방법 및 디스플레이 시스템 |
| WO2016086363A1 (zh) * | 2014-12-03 | 2016-06-09 | 华为技术有限公司 | 一种处理操作方法及终端 |
| EP3276480A4 (en) * | 2015-04-14 | 2018-05-02 | Huawei Technologies Co. Ltd. | Gesture control method, device, terminal apparatus and storage medium |
| CN105224127B (zh) * | 2015-09-23 | 2019-03-29 | 联想(北京)有限公司 | 一种信息处理方法及电子设备 |
| CN105786252B (zh) * | 2016-02-29 | 2019-02-12 | 上海中航光电子有限公司 | 触控装置表面触控类型的确定方法及系统 |
| CN105912158B (zh) * | 2016-04-05 | 2019-04-23 | Oppo广东移动通信有限公司 | 一种移动终端的触屏拍照方法、装置及移动终端 |
| CN106843570A (zh) * | 2016-12-30 | 2017-06-13 | 胡振强 | 压感识别屏幕 |
| CN108932057A (zh) * | 2018-06-28 | 2018-12-04 | Oppo广东移动通信有限公司 | 操作控制方法、装置、存储介质及电子设备 |
| CN114546166B (zh) * | 2018-09-14 | 2024-07-19 | 梁晨 | 避免电容式触摸屏拖拽动作微位移误操作的方法 |
| CN110704380A (zh) * | 2019-08-27 | 2020-01-17 | 努比亚技术有限公司 | 一种图片自动删除方法、终端及计算机可读存储介质 |
| CN112381545B (zh) * | 2020-11-20 | 2025-03-28 | 惠州Tcl移动通信有限公司 | 一种身份验证方法、装置、设备及存储介质 |
| CN114265736A (zh) * | 2021-12-22 | 2022-04-01 | 威创集团股份有限公司 | 一种触控一体机的触控延迟时间测试方法和相关装置 |
Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN1815428A (zh) * | 2005-01-31 | 2006-08-09 | 株式会社东海理化电机制作所 | 触摸操作输入装置 |
| CN1942849A (zh) * | 2004-04-30 | 2007-04-04 | 株式会社Dds | 操作输入设备和操作输入程序 |
-
2011
- 2011-05-24 CN CN201110135816.1A patent/CN102799292B/zh active Active
-
2012
- 2012-05-23 US US14/122,059 patent/US9367156B2/en active Active
- 2012-05-23 WO PCT/CN2012/075960 patent/WO2012159568A1/zh not_active Ceased
Patent Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN1942849A (zh) * | 2004-04-30 | 2007-04-04 | 株式会社Dds | 操作输入设备和操作输入程序 |
| CN1815428A (zh) * | 2005-01-31 | 2006-08-09 | 株式会社东海理化电机制作所 | 触摸操作输入装置 |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN109328327A (zh) * | 2016-03-02 | 2019-02-12 | 氧化树脂涂料有限公司 | 用于非电子显示器基底表面的触摸敏感控制系统 |
| CN109328327B (zh) * | 2016-03-02 | 2022-12-06 | 氧化树脂涂料有限公司 | 用于非电子显示器基底表面的触摸敏感控制系统 |
| CN111026296A (zh) * | 2018-10-10 | 2020-04-17 | 佛山市顺德区美的洗涤电器制造有限公司 | 触摸按键的响应控制方法、装置及电器 |
Also Published As
| Publication number | Publication date |
|---|---|
| US9367156B2 (en) | 2016-06-14 |
| CN102799292A (zh) | 2012-11-28 |
| CN102799292B (zh) | 2016-03-30 |
| US20140092049A1 (en) | 2014-04-03 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| WO2012159568A1 (zh) | 触摸控制方法、装置及电子设备 | |
| CN109428969B (zh) | 双屏终端的边缘触控方法、装置及计算机可读存储介质 | |
| CN103620542B (zh) | 基于触摸屏的物理按键模拟方法及装置 | |
| TWI567602B (zh) | 觸控輸入判斷方法以及使用此觸控輸入判斷方法的電子裝置 | |
| WO2015032190A1 (zh) | 截屏方法、装置和终端设备 | |
| CN106708263A (zh) | 一种触摸屏的防误触方法、装置及移动终端 | |
| CN106406633A (zh) | 一种触摸屏边缘的防误触方法、装置及移动终端 | |
| CN106681636B (zh) | 一种防误触的方法、装置及移动终端 | |
| CN202995699U (zh) | 一种采用触摸屏拍照的手持终端 | |
| WO2015085783A1 (zh) | 一种启动终端功能模块的方法及终端设备 | |
| CN105487809A (zh) | 一种终端的控制方法及装置 | |
| WO2017161824A1 (zh) | 一种终端的控制方法及装置 | |
| WO2015131590A1 (zh) | 一种控制黑屏手势处理的方法及终端 | |
| CN106095422B (zh) | 应用操控方法、装置及终端设备 | |
| CN111201768B (zh) | 一种拍摄对焦方法、装置 | |
| WO2014190598A1 (zh) | 通过移动终端远程控制数字电视终端的方法及其系统 | |
| TW201740271A (zh) | 應用程式資料處理的方法及裝置 | |
| WO2014190597A1 (zh) | 通过移动终端远程控制数字电视终端的方法及其系统 | |
| CN105630166A (zh) | 用于移动终端的控制方法、装置和移动终端 | |
| CN105718204A (zh) | 基于触摸手势的控制方法及装置 | |
| CN107025024A (zh) | 一种防止移动终端误操作的方法及移动终端 | |
| WO2020147587A1 (zh) | 触控操作方法、装置、终端及计算机可读存储介质 | |
| CN104423661A (zh) | 一种移动终端及防止触摸屏误触摸的方法 | |
| CN106874044A (zh) | 一种摄像头切换方法和移动终端 | |
| CN110764683A (zh) | 一种处理操作方法及终端 |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 12789494 Country of ref document: EP Kind code of ref document: A1 |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 14122059 Country of ref document: US |
|
| 122 | Ep: pct application non-entry in european phase |
Ref document number: 12789494 Country of ref document: EP Kind code of ref document: A1 |


