VOICE-RECOGNITION/VOICE-ACTIVATED VEHICLE SIGNAL SYSTEM
20190299850 ยท 2019-10-03
Inventors
Cpc classification
G10L15/22
PHYSICS
B60Q1/34
PERFORMING OPERATIONS; TRANSPORTING
G06F3/167
PHYSICS
B60Q1/343
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A control system is operable within a host vehicle to control the operation of signaling apparatus indicative of a driver intent to execute right, left or U-turn actions. The control system includes a voice recognition circuit for activating turn signal devices within the vehicle. In some embodiments, a wireless link facilitates aftermarket applications while in other embodiments original equipment manufacturer is accommodated.
Claims
1. For use in a vehicle, a voice operated signal system comprising: a platform hosted by a smart phone computer; a microphone on the smart phone for converting audible information to voice signals; a voice recognition system for decoding said voice signals and producing activation signals corresponding to a U-turn signal, a right turn signal, and a left turn signal commands within said voice signals; a on-board diagnostics II (ODBII) connector that connects to a vehicle via a ODBII port of said vehicle; said ODBII connector is coupled to said platform wirelessly via Bluetooth; a voice activation module activates said vehicle's left turn signal and right turn signal via said ODBII port; an external U-turn light apparatus; said voice activation module send said U-turn signal command to said external U-turn apparatus; said external U-turn light apparatus is coupled to said platform via Bluetooth.
2. For use in a vehicle, a voice operated signal system comprising: a platform hosted by a smart phone computer; a microphone on the smart phone for converting audible information to voice signals; a voice recognition system for decoding said voice signals and producing activation signals corresponding to a U-turn signal, a right turn signal and a left turn signal commands within said voice signals; an external U-turn light apparatus coupled to said platform via Bluetooth; an external left turn apparatus coupled to said platform via Bluetooth and an external right turn apparatus coupled to said platform via Bluetooth; a voice activation module activates said vehicle's left turn signal wirelessly to said external left turn apparatus; said voice activation module activates said vehicle's right turn signal wirelessly to said external right turn apparatus; said voice activation module activates said vehicle's U-turn signal wirelessly to said external U-turn apparatus.
3. For use in a vehicle, a voice operated signal system comprising: a platform hosted by a smart phone computer; a microphone on the smart phone for converting audible information to voice signals; a voice recognition system for decoding said voice signals and producing activation signals corresponding to a U-turn signal, a right turn signal and a left turn signal commands within said voice signals; an external U-turn light apparatus; a voice activation module send said U-turn signal command to said external U-turn apparatus; said external U-turn light apparatus is coupled to said platform via Bluetooth; a switch toggle device coupled to said platform via Bluetooth wherein said switch toggle is coupled to a vehicle's left and right turn signal switch wherein said voice activation module send said left and right turn signal commands to said switch toggle wherein said switch toggle thereby activates said vehicle's left and right turn signal switch; and wherein said voice recognition system includes timer means for limiting the activation of said U-turn signal means, said right turn signal means and said left turn signal means to a predetermined time interval.
4. The signal system set forth in claim 1 wherein said voice recognition system includes timer means for limiting the activation of said U-turn signal means, said right turn signal means and said left turn signal means to a predetermined time interval.
5. The signal system set forth in claim 4 wherein said voice commands further include a stop command and wherein voice recognition means includes stop means for terminating the activation of said U-turn signal means, said right turn signal means or said left turn signal means when said stop command is decoded regardless of said time interval.
6. The signal system set forth in claim 2 wherein said voice commands each include a command word common to all of said voice commands and wherein said voice recognition system includes a coupling means for responding solely to voice commands including said command words.
7. The signal system set forth in claim 6 wherein said voice recognition system includes timer means for limiting the activation of said U-turn signal means, said right turn signal means and said left turn signal means to a predetermined time interval.
8. The signal system set forth in claim 7 wherein said voice commands further include a stop command and wherein voice recognition means includes stop means for terminating the activation of said U-turn signal means, said right turn signal means or said left turn signal means when said stop command is decoded regardless of said time interval.
9. The signal system set forth in claim 6 wherein said coupling means includes a wireless communication link.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] The features of the present invention, which are believed to be novel, are set forth with particularity in the appended claims. The invention, together with further objects and advantages thereof, may best be understood by reference to the following description taken in conjunction with the accompanying drawings, in the several figures of which like reference numerals identify like elements and in which:
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DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0056] The figures below set forth various embodiments of the present invention. Each embodiment shows the invention from a different perspective.
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[0058] It will be apparent to those skilled in the art that while preferred embodiments utilize a U-turn flashing signal 9 wherein the U-turn is typically made as a left turn, in that for markets where drivers drive on the opposite side of the street (such as the United Kingdom), the U-turn signal may be configured to show an appropriate (right turn) U-turn signal as illustrated in
[0059] Continuing in
[0060] As mentioned above, safety device 1 having receiving unit 9 (shown in
[0061] U-turn device 1 may be attached to a windshield (not shown) by a swivel suction cup 17 illustrated in
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[0063] Sending unit 21 includes a wireless control portion (shown below) which when actuated, sends a signal to receiving units placed in front and the rear of the host vehicle. The U-turn symbol, preferably exhibiting an arrow 31 as illustrated in
[0064] Remote device 21 may be attached to any part of the host vehicle including the dashboard, visor, or any other interior area. Remote device 21 may be attached to the interior of the vehicle with an adhesive component or clip (not shown).
[0065] Remote device 21 may be a radio frequency (RF) activated circuit that sends a UHF signal which does not require line of sight transmission. The circuitry of remote device 21 may be housed in a plastic or metal container and powered by a battery. Other types of power sources may be utilized including tapping into the power supply of the vehicle. The RF, UHF or any other utilized transmitting signals will not interfere with other vehicles in close proximity of the device utilized vehicle. In an exemplary embodiment, the LED light bulb may be seen up to or beyond an intersection. Also, a solar power system may be used to power the safety device.
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[0070] Additionally,
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[0073] In operation, the user activates transmitting circuit 121 by pressing button 123. Circuit 121 transmits a signal from antenna 122 to antenna 126 of receiver circuit 125. Receiver circuit 125 recovers the data information from the transmitted signal and provides data and enables signals to processor 127. Comparator 128 functions as a gain control circuit to maintain proper signal levels within processor 127. The activation signal for U-turn signal device 130 is coupled to device 130 via timer 129. Timer 129 retains the signal coupling for a predetermined time interval after which timer 129 no longer provides an activating signal to device 130 and signaling of U-turn intention ceases. The use of transmission link between transmitting circuit 121 and receiving circuit 125 of U-turn signal device 120 facilitates an aftermarket application for the present invention in that no wire connection is required between the transmitter and the receiver. This in turn allows the user to place the U-turn signal device including output device 130 at a convenient place such as the rear deck of the host vehicle and to place transmitter 121 together with manual button 123 at a convenient location such as the dashboard of the host vehicle.
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[0075] It will be apparent to those skilled in the art that system 140 employs a microphone 93 and thus is intended to provide a voice activation or voice recognition operation. Comparison of the systems shown in
[0076] In operation, microphone 93 receives spoken commands provided by the user which produce output signals applied to amplifier 141. Amplifier 141 increases the power level of the detected voice signals and applies it to bandpass filter 142. Bandpass filter 142 limits the transmitted signals applied 142 to microcontroller 167 to signals having frequencies within the desired useful frequency range. In essence, bandpass filter 142 is selected to pass signals having frequencies within the audible range detected by microphone 93 while excluding spurious signals such as noise or the like. Microcontroller 167 functions in the manner described below to communicate operative control signals to output control 113 which correspond to the specific information found in the spoken commands detected by microphone 93. In this manner, microcontroller 167 provides voice activation and/or voice recognition functions. Microcontroller 167 further operates user interface 111 to provide visual information suitable for informing the vehicle operator of system operation and condition. In the preferred fabrication of the present invention embodiment shown in
[0077] In a typical sequence of operations, the user speaks a command into microphone 93 which produces voice signals amplified by amplifier 141 and pass through bandpass filter 142. Microcontroller 167 compares the signals received to voice signal information previously stored within the microcontroller. This comparison results in providing the appropriate control signals to user interface 111 and output control 113 to initiate the desired signal action corresponding to the voice command. For example, the output condition desired by correspond to a U-turn signal activation. Alternatively, right turn or left turn indicative signal apparatus may be operated in response to the spoken command. In this manner, the user operating the host vehicle is able to maintain full control and full intention to vehicle operation keeping both hands upon the steering wheel.
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[0079] With specific attention to
[0080] In the event a determination is made as step 136 that the word is not an on command, the system moves to step 145 determining whether the spoken word is an off command. In the event the detected command is an off command the system moves to step 146 determining whether the system is operating in an on condition. In the event the system is operating in an on condition, the system moves to step 147 turning the power off and returning to end step 148. Returning to step 137 in the event that the switch condition is not an off condition, the system returns to end step 148. Similarly, in step 145 a determination that the word command is not an off command causes the system to move to end step 148. Similarly, a determination at step 146 that the system is not in an on condition causes the system to move to end step 148. In this manner the present invention system functions to respond to voice commands and self activate in the event a command is detected.
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[0082] More specifically, system 150 includes a microphone 149 coupled to an amplifier 151 the output of which is coupled to an analog to digital converter 152. The output of converter 152 is coupled to the input of a transmitting circuit 153. A transmitting antenna 154 is coupled to the output of transmitting circuit 153.
[0083] System 150 further includes a receiving circuit and amplifier 156 having a receiving antenna 155 coupled to the input thereof. The output of receiving circuit and amplifier 156 is coupled to a voice recognition processor 157. Processor 157 further includes an associated memory 158 in communication therewith. System 150 further includes a vehicle interface 159 having outputs coupled to a right turn and left turn signaling circuit 161. A further output of voice recognition processor 157 is coupled to a U-turn indicating device 160.
[0084] In operation, the vehicle operator speaks a voice command received by microphone 149 which converts the command to electrical signals which are amplified to a sufficient power level by amplifier 151. The amplified signals are coupled to analog to digital converter 152 wherein the analog voice information signals are converted to corresponding digitally encoded signals. Transmitting circuit 153 receives the digitally encoded voice information from converter 152 and modulates it upon a convenient carrier signal for transmission from antenna 154. In this manner, the voice signals spoken by the vehicle user are converted to appropriate digitally encoded electronic signals which are transferred to the receiver portion of system 150.
[0085] The transmitted signals are received by receiving antenna 155 and applied to receiving circuit and amplifier 156. Receiving circuit and amplifier 156 recovers the digitally encoded voice information from the transmitted signal and passes the voice data to voice recognition processor. 157. As voice data is applied to processor 157, processor 157 interacts with the stored information within memory 158 to convert the voice data to appropriate command signals. In voice recognition technologies, of the type which processor 157 employs, the stored information within memory 158 allows processor 157 to determine the particular voice information spoken by the vehicle user. It addition, the voice recognition technology is also able to employ user recognition and identification by comparing the received voice signals to stored reference signals within memory 158. In this manner, processor 157 is not only capable of determining what the command meaning are within the voice data but also capable of operating solely in response to voice commands which are spoken by one or more authorized recognizable voice informtio!l sources while excluding spoken commands from other individuals. Processor 157 responds to the detected voice information by activating the appropriate signal circuitry within the host vehicle. For example, in the event the vehicle user has spoken a command desiring the U-turn signal apparatus be activated, processor 157 determines this command meaning and activates U-turn signal indicator 160. Conversely, in the event that the command signal interoperated by processor 157 corresponds to a user command for a right turn signal or a left turn signal, processor 157 applies appropriate information signals to vehicle interface 159. The output of vehicle interface 159 is coupled to the existing right and left turn signal circuitry within the host vehicle. This coupling is undertaken in a convenient manner such as accessing the turn signal boards or wiring harness within the host vehicle. Of importance with respect to vehicle interface vehicle 159 is the capability to convert the output command signal of processor 157 into a suitable voltage and current level for application to the right and left turn signaling apparatus within vehicle system 161.
[0086] In the preferred operation of system 150 shown in
[0087] With temporary reference to
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[0089] In operation, spoken commands detected by microphone 149 are increased in power by amplifier 151 and applied to transmitting circuit 153. By conventional modulation techniques, transmitting circuit 153 modulates the amplified voice signals fixed upon a convenient carrier signal which is transmitted from antenna 154 and received by antenna 155. The received modulated signal at antenna 155 is coupled to an amplifier/demodulator 172 which recovers the voice information signals from the transmitting carrier. The voice signals are then converted from analog to digital signals by converter 173 and stored within a buffer 17 4. In this manner, voice commands received by microphone 149 are transmitted to the receiving unit and converted to digital voice signals stored within buffers 174.
[0090] A voice recognition system 157 includes a voice recognition processor 175 having an associated memory 176 together with a decoding circuit 177. Decoding circuit 177 is also coupled to memory 176. A system processor 180 includes an associated memory 181 and is operatively coupled to decoding circuit 177. The output of processor 180 is coupled to a signal matrix 182. Matrix 182 provides output signals to a U-turn signal driver 183, a right turn signal driver 184 and a left turn signal driver 185. The output of U-turn signal driver 183 is coupled to a U-turn signaling device 160 while the outputs of right turn signal driver 184 and left turn signal driver 185 are coupled to a vehicle turn signal control 161. A timer 186 is coupled to the output of decoding circuit 177 and provides timing signals coupled to drivers 183, 184 and 185.
[0091] In operation, the voice data signals stored within buffer 174 are coupled to voice recognition processor 175. Processor 175 and decoder circuit 177 cooperate with memory 176 to interpret the applied voice command signals and produce output command signals for application to processor 180. Among the functions performed by voice recognition processor 175, decoder 177 and memory 176 the above-mentioned processes of determining the presence or absence of a command keyword as well as voice recognition characteristic of an authorized user are performed. In essence then, processor 175 together with memory 176 and decoder 177 perform the initial evaluation of the voice signals as to authorized use and command structure to screen out extraneous voice communications and avoid unintended operation of the signaling system.
[0092] Processor 180 together with memory 181 performs system operations upon the received decoded signals from decoding circuit 177 and interoperates the signals to separate signals intended for operation of the U-turn signaling apparatus as well as right and left turn signaling apparatus. Toward this end, the process signals of processor 180 are routed by signal matrix 182 to the appropriate one of drivers 183, 184 or 185.
[0093] Concurrently, decoding circuit 177 also initiates the operation of timer 186 when transferring signals to processor 180. In response, timer 186 activates signal drivers 183, 184 and 185 for a predetermined time interval after which timer 186 deactivates drivers 183, 184 and 185.
[0094] In this manner, the signaling systems of the host vehicle are operated for a predetermined interval in response to each voice command. In addition and as is set forth below in the flow diagram of
[0095] Thus, system 170 provides aftermarket installation of the present invention system within a existing manufactured vehicle with appropriate connection to the vehicles turn signaling apparatus as referenced by numeral 161. In addition, system 170 utilizes a supplemental U-turn signal apparatus 160 which may be added to the vehicle in accordance with the above-described embodiments.
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[0097] In operation, spoken commands detected by microphone 149 are increased in power by amplifier 151 and applied to transmitting circuit 153. By conventional modulation techniques, transmitting circuit 153 modulates the amplified voice signals fixed upon a convenient carrier signal which is transmitted from antenna 154 and received by antenna 155. The received modulated signal at antenna 155 is coupled to an amplifier/demodulator 172 which recovers the voice information signals from the transmitting carrier. The voice signals are then converted from analog to digital signals by converter 173 and stored within a buffer 174. In this manner, voice commands received by microphone 149 are transmitted to the receiving unit and converted to digital voice signals stored within buffers 174.
[0098] A voice recognition system 157 includes a voice recognition processor 175 having an associated memory 176 together with a decoding circuit 177. Decoding circuit 177 is also coupled to memory 176. A system processor 180 includes an associated memory 181 and is operatively coupled to decoding circuit 177. The output of processor 180 is coupled to a signal matrix 182. Matrix 182 provides output signals to a U-turn signal driver 183, a right turn signal driver 184 and a left turn signal driver 185. The output of U-turn signal driver 183 is coupled to a U-turn signaling device 160 while the outputs of right turn signal driver 184 and left turn signal driver 185 are coupled to a vehicle turn signal control 161. A timer 186 is coupled to the output of decoding circuit 177 and provides timing signals coupled to drivers 183, 184 and 185.
[0099] In operation, the voice data signals stored within buffer 174 are coupled to voice recognition processor 175. Processor 175 and decoder circuit 177 cooperate with memory 176 to interpret the applied voice command signals and produce output command signals for application to processor 180. Among the functions performed by voice recognition processor 175, decoder 177 and memory 176 the above-mentioned processes of determining the presence or absence of a command keyword as well as voice recognition characteristic of an authorized user are performed. In essence then, processor 175 together with memory 176 and decoder 177 perform the initial evaluation of the voice signals as to authorized use and command structure to screen out extraneous voice communications and avoid unintended operation of the signaling system.
[0100] Processor 180 together with memory 181 performs system operations upon the received decoded signals from decoding circuit 177 and interoperates the signals to separate signals intended for operation of the U-turn signaling apparatus as well as right and left turn signaling apparatus. Toward this end, the process signals of processor 180 are routed by signal matrix 182 to the appropriate one of drivers 183, 184 or 185.
[0101] Concurrently, decoding circuit 177 also initiates the operation of timer 186 when transferring signals to processor 180. In response, timer 186 activates signal drivers 183, 184 and 185 for a predetermined time interval after which timer 186 deactivates drivers 183, 184 and 185. In this manner, the signaling systems of the host vehicle are operated for a predetermined interval in response to each voice command. In addition and as is set forth below in the flow diagram of
[0102] Thus, system 190 provides an embodiment of the present invention system whereby the manufacturer of a vehicle is able to install a voice responsive hands free control system for operating the turn signals of the host vehicle together with a U-turn signal indicator. It will be apparent to those skilled in the art that the use of system 190 within vehicle manufacturer affords the vehicle manufacturer the opportunity to install the system in an optimum manner.
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[0104] More specifically, the operation shown in
[0105] In the event a U-turn command is detected at step 203, the system moves to step 207 and initiates timer operation. Thereafter the system moves to step 208 and initiates the operation of the U-turn signaling system. Following step 208, the system moves to step 209 and determines whether the timer has timed out. In the event the timer has not timed out, the system returns to step 208 operating the U-turn signal apparatus. Once a determination is made at step 209 that the timer interval has timed out, the system moves to step 210 and deactivates the U-turn signaling apparatus. Thereafter, the system returns to step 200 awaiting the next voice command.
[0106] In the event a determination is made at step 204 that a right turn signal command is present, the system moves to step 211 and starts timer operation. Following timer operation, the system moves to step 212 and operates the right turn signaling apparatus. Thereafter, the system determines at step 213 whether the timer interval has timed out. In the event the timer interval has not timed out, the system returns to step 212 and continues to operate the right turn apparatus. Once the timer has timed out, the system moves to step 214 and the right turn signaling apparatus is deactivated.
[0107] In the event a determination is made at step 205 that a left turn command is present, the system operates in the above-described manner through steps 215, 216 and 217 to operate the left turn signaling apparatus for a predetermined timer interval and thereafter moves to step 218 to deactivate left turn signaling.
[0108] Modern vehicles have central computer that controls from the engine operation to the body sensors, yaw sensors, suspension sensors and even light signals. All these controlling functions can be overwritten with new code instructions through the vehicle's ODB port. Majority of the modern vehicles have ODBII port for access to the central CPU to access the instruction. The new embodiment of the invention includes an application embedded in the iPhone or Google phone where, acting as a phone app, it has a voice recognition module to detect voice command from the user via the phone's microphone and convert the command into digital command and instruct the vehicles' left and right turn signals to activate or terminate via new instruction sent to the CPU of the vehicle via the ODBII port. Generally the access to the ODBII port is via wireless link by Bluetooth link from the iPhone where command is communicated to the ODB wireless module.
[0109] Further, in this one aspect of the invention, the system also has as a component, a physical U-turn signal indicator 1617 which is a portable device that is to be placed inside the vehicle's passage cabin such that it is viewable for the read of the vehicle. This U-turn signal indicator 1617 is connected to the smart phone app 1614 via a Bluetooth connection as well.
[0110] Referring now to
[0111] Some of the older vehicles does not have central computer that controls the light signals. The new embodiment of the invention includes an application embedded in the iPhone or Google phone where, acting as a phone app, it has a voice recognition module to detect voice command from the user via the phone's microphone and convert the command into digital command and instruct the left and right turn signals to activate or terminate via new instruction sent to externally constructed left turn, right turn and U-turn signal apparatus. So in the package of the present invention, the system is comprised of a platform hosted on a smart phone computer where external light signal apparatuses are coupled to the platform via wireless Bluetooth link. Referring now to
[0112] As stated above, some of the older vehicles does not have central computer that controls the light signals. The new embodiment of the invention includes an application embedded in the iPhone or Google phone where, acting as a phone app, it has a voice recognition module to detect voice command from the user via the phone's microphone and convert the command into digital command and instruct the left and right turn signals to activate or terminate via new instruction sent to externally constructed switching device. The purpose of the switching device is by piggy-back the connecting the switching device to the vehicle's original left and right turn activation switch, the switching device can activate the vehicle's original left and right turn signal base on the instruction of the switching device which receives its instruction via wireless Bluetooth link from the platform or app as hosted on the smart phone.
[0113] What has been shown is a novel voice responsive vehicle signaling apparatus which may be used in aftermarket and original equipment manufacturing applications. The system provides hands free voice responsive and voice recognition capability allowing the user to maintain full attention to driving activities and vehicle operation. In one other embodiment, the same invention can be applied to other vehicular functions such as activation of wipers, activation of cruise control, activation of temperature control. Specifically, these functions can be controlled through the same invention disclosed here via ODBII modification. In yet another embodiment, the phone can act as dash camera and the function can be integrated with the current system and capable of storing video feed in the Cloud using the smartphone's wireless connectivity.
[0114] While particular embodiments of the invention have been shown and described, it will be obvious to those skilled in the art that changes and modifications may be made without departing from the invention in its broader aspects. Therefore, the aim in the appended claims is to cover all such changes and modifications as fall within the true spirit and scope of the invention.