The present disclosure relates to measurement method, device and system. More particularly, the present disclosure relates to a method for measuring temperature, a portable electronic device, and a video conference.
During meeting, the participants might be affected by the environment of the meeting room. For example, if environment temperature is high, this might affect the participants so that the efficiency and progress of the meeting will be affected.
Temperature sensors are affected by heat generated from high load components in devices. Therefore, the temperature sensors cannot measure the outdoor temperature around the devices. Hence, there are technology defects and shortcomings in this field, which need to be solved.
One aspect of the present disclosure provides a method for measuring temperature. The method for measuring temperature is configured to obtain a room temperature of a room and includes the following steps: obtaining a first temperature inside an operation area of a portable electronic device in the room; obtaining a second temperature outside the operation area of the portable electronic device by a first temperature sensor; calculating a temperature difference between the first temperature and the second temperature; obtaining a compensation temperature according to the temperature difference and a compensation temperature table; and calculating the room temperature according to the second temperature and the compensation temperature.
Another aspect of the present disclosure provides a portable electronic device. The portable electronic device is configured to calculate a room temperature of a room, and includes a shell, an operation area, a first temperature sensor, and a processor. The shell includes an accommodating space. The operation area is disposed inside the accommodating space. The operation area includes a first temperature. The first temperature sensor is configured to obtain a second temperature outside the operation area. The processor is configured to calculate a temperature difference between the first temperature and the second temperature, the processor is configured to obtain a compensation temperature according to the temperature difference and a compensation temperature table, and the processor is configured to calculate a room temperature according to the second temperature and the compensation temperature.
Another aspect of the present disclosure provides a video conference system. The video conference system includes at least one portable electronic device, a display device, and a processor. The at least one portable electronic device is configured to calculate a room temperature. The display device is configured to display the room temperature of the at least one portable electronic device. The processor is configured to receive the room temperature and control an air conditioning device according to the room temperature.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the present disclosure as claimed.
The present disclosure can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
Reference will now be made in detail to the present embodiments of the present disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
In some embodiments, the operation area 110 includes areas which surround high load components. The high load components can be central processors, memories, graphics chips, 3D (3-dimension) acceleration chips or power transistors. In detail, the high load components are located in the accommodating space of the shell 190. The high load components generate waste heat after powering up, which rises the temperature in the surrounding area. The surrounding area is the operation area 110. In some embodiments, the high load components are provided with built-in digital temperature sensors. In other words, the built-in digital temperature sensors are integrated in various high load components. Moreover, the high load components read a first temperature measured from the digital temperature sensors by PECI (Platform Environmental Control Interface) protocol, and transmit the first temperature to a processor so as to calculate a plurality of temperature measurement data.
In some embodiments, please refer to
In some embodiments, the first temperature sensor 150 includes thermocouple sensors, resistive temperature sensors, thermistors, and fiber optic temperature sensors. The first temperature sensor 150 is configured to obtain a second temperature which is measured outside the operation area 110 and close to the inner edge of the shell 190. The first temperature sensor 150 is located in the accommodating space of the shell 190. The location of the first temperature sensor 150 is outside the operation area 110 and close to the inner edge of the shell 190.
In some embodiments, the processor 130 includes but not limited to a single processor and the integration of many micro-processors, for example, central processors (Central Processing Unit, CPU) or graphic processors (Graphic Processing Unit, GPU) and so on. The processor (or the micro-processors) is coupled to the first temperature sensor 150. Therefore, the processor 130 receives the plurality of temperature measurement data from the first temperature sensor 150, and implements the method for measuring temperature according to the plurality of temperature measurement data. In order to facilitate the understanding of the method for measuring temperature, the detail steps of the method will be explained in the following paragraphs.
In some embodiments,
In step 310, a first temperature inside an operation area of a portable electronic device in a room is obtained.
In some embodiments, please refer to
In some embodiments, please refer to
In step 320, a second temperature outside the operation area of the portable electronic device is obtained by a first temperature sensor.
In some embodiments, please refer to
In step 330, a temperature difference between the first temperature and the second temperature is calculated.
In some embodiments, please refer to
In step 340, a compensation temperature according to the temperature difference and a temperature compensation table is obtained.
In some embodiments, please refer to
In step 350, the room temperature according to the second temperature and the compensation temperature is calculated.
In some embodiments, please refer to
In some embodiments, please refer to
In some embodiments, after the portable electronic device 100 starts, the portable electronic device 100 can be pre-measured continuously changing temperature values with time by time in a specific environment. The portable electronic device 100 generates aforementioned temperature compensation according to the continuously changing temperature values, the corresponding first temperature and the second temperature in the portable electronic device 100. For example, please refer to
In some embodiments, the processor 130 constructs a plurality of compensation temperature tables under the different environment temperatures. Therefore, the present disclosure constructs a plurality of compensation temperature tables corresponding to the different environment temperatures, such that the portable electronic device 100 and the method 300 for measuring temperature preform an adaptive compensation according to the situation of the environment temperature.
In some embodiments, please refer to
Moreover, the first temperature sensor 150 obtains a second temperature in the second time interval. Next, the processor 130 subtracts the environment temperature from the second temperature measured by the first temperature sensor 150 to obtain a compensation temperature. Furthermore, the processor 130 obtains a first temperature inside the operation area in the second time interval. In addition, the processor 130 subtracts the second temperature from the first temperature to obtain a temperature difference in the second time interval.
Finally, the processor 130 matches the temperature difference and the compensation temperature in the first time interval, and matches the temperature difference and the compensation temperature in the second time interval. Next, the processor 130 sorts the temperature difference and the compensation temperature corresponding to the first time interval and the second time interval so as to generate a compensation temperature table.
In some embodiments, please refer to
Please refer to formula 1, Tempn is the average of the second temperature per 3 minutes.
Moreover, the environment temperatures outside the portable electronic device 100 are obtained per 10 seconds. The processor 130 averages the 18 temperature measurement data of the environment temperatures per 3 minutes which is measured for 2 hours continuously. The calculation are detailed below:
Please refer to formula 2, Externaln is the average of the environment temperatures per 3 minutes.
Furthermore, please refer to
Please refer to formula 3, Internaln is the average of the first temperatures per 3 minutes.
Subsequently, the processor 130 obtains the temperature difference and the compensation temperature according to the average of the second temperatures, the average of the environment temperatures, and the average of the first temperatures. The temperature difference and the compensation temperature are continuously measured for 2 hours to obtain 40 data respectively. The calculations are detailed below:
ΔT2(temp)=Externaln−Tempn|n=1, . . . , 40 formula 4
ΔT1=Internaln−Externaln|n=1, . . . , 40 formula 5
Please refer to formula 4 and formula 5, ΔT2(temp) is the compensation temperature subtracted the average of the environment temperature from the average of the second temperature. ΔT1 is the temperature difference subtracted the average of the second temperature from the average of the first temperature. As shown in the table 1, the processor 130 constructs the compensation temperature table according to the compensation temperature and the temperature difference per 3 minutes.
In some embodiments, please refer to
In some embodiments, the method for calculating compensation temperature includes interpolation, extrapolation and the combination of the aforementioned methods.
In some embodiments, please refer to
Please refer to formula 6, ΔT1 is the temperature difference. ΔT1(min) is the smallest temperature difference in the time interval. ΔT1(max) is the biggest temperature difference in the time interval. ΔT2(temp) is the expected compensation temperature. ΔT2(min) is the smallest compensation temperature in the time interval. ΔT2(max) is the biggest compensation temperature in the time interval.
In some embodiments, please refer to table 1,
Moreover, please refer to formula 6, ΔT2 (temp) at the upper right side of the equation is the only one unknown number in the formula 6, and is also the expected compensation temperature by the interpolation method. Please refer to the left side of equation of the formula 6. At first, the processor 130 subtracts the smallest temperature difference 8.19 from the temperature difference 8.24 to obtain the difference 0.05 in the time interval. Then, the processor 130 divides the difference 0.05 by the value 0.56 so as to obtain the value 0.0893 (round off the value to the ten-thousandth digit). The value 0.56 is obtained by subtracting the temperature difference 8.19 from the biggest temperature difference 8.75 in the time interval.
After that, the right side of equation is calculated according to the value 0.0893 obtained from the left side of the equation. Then, the value 0.0893 obtained from the left side of the equation is multiplied by the value 0.20 so as to obtain the value 0.018 (round off the value to the thousandth digit). The value 0.20 is obtained by subtracting the smallest compensation temperature 2.80 from the biggest compensation temperature 3.00 at the lower right side of the equation in the time interval. Furthermore, the value 0.018 is added by the smallest compensation temperature 2.80. The processor 130 finally obtains the expected compensation temperature 2.818 (round off the value to the thousandth digit) in the time interval. Therefore, when the temperature difference is 8.24, the second temperature needs to be compensated by the compensation temperature 2.818.
In some embodiments, the portable electronic device 470 and the portable electronic device 490 are the portable electronic device of the present disclosure, for example, the portable electronic device 100 shown in
Based on the above embodiments, the present disclosure provides a portable electronic device, a method for temperature measuring and a video conference system. The present disclosure applies the method for measuring temperature into the portable electronic device and the video conference system. There is a very small error between a room temperature obtained from a portable electronic device and a present environment temperature by using the method for measuring temperature of the present disclosure. The room temperature can be measured accurately by using the method for measuring temperature of the present disclosure so as to provide participants to maintain an appropriate temperature during the video conference, and the conference can be facilitated.
Although the present disclosure has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the present disclosure cover modifications and variations of this present disclosure provided the y fall within the scope of the following claims.
This application claims priority to U.S. Provisional Application Ser. No. 62/958,725, filed Jan. 9, 2020, which is herein incorporated by reference in its entirety.
Number | Date | Country | |
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62958725 | Jan 2020 | US |