1460942080-1ee6475d-e7ea-46f9-858d-8d0caa695b9b

1. An image communication apparatus transmitting a subaddress signal, the apparatus comprising:
extension number input means for inputting a plurality of extension numbers as information of the subaddress signal;
secondary telephone number input means for inputting a plurality of secondary telephone numbers;
direct input means for directly inputting particular information; and
display means for displaying an acknowledge message which is to confirm whether to send the particular information as information in accordance with ITU-T Recommendation T. 33 when the particular information is input from said direct input means,
wherein the subaddress signal, with the plurality of the extension numbers designated by said extension number input means for inputting the plurality of the extension numbers, or the plurality of the secondary telephone numbers designated by said secondary telephone number input means for inputting the plurality of the secondary telephone numbers, or both the extension number and the secondary telephone number designated by said direct input means for directly inputting the particular information, is transmitted, and a message is displayed if a communication error occurs after the transmission of a SUBDCS signal.
2. An image communication apparatus according to claim 1, wherein the particular information input by said direct input means is one of the symbols # and ##, and
wherein when the input of a plurality of pieces of numerical information delimited by one of the symbols # and ##is selected, a message is displayed to prompt a user to acknowledge the designation of a plurality of extension numbers, the designation of a plurality of secondary telephone numbers, or the designation of an extension number and a secondary telephone number.
3. An image communication apparatus according to claim 2, wherein the displayed message is changed in response to the information of the directly input subaddress.
4. An image communication apparatus according to claim 1, wherein the displayed message prompts a user to check to see whether the partner apparatus has one of the function of receiving the plurality of the extension numbers, the function of receiving the plurality of the secondary telephone numbers, and the function of receiving both the extension number and the secondary telephone number.
5. An image communication apparatus according to claim 1, wherein the image communication apparatus is a facsimile apparatus.
6. An image communication apparatus transmitting a subaddress signal, comprising:
extension number input means for inputting a plurality of extension numbers as information of the subaddress signal;
secondary telephone number input means for inputting a plurality of secondary telephone numbers;
direct input means for directly inputting particular information;
determination means for determining whether or not the particular information, which is a plurality of extension numbers as information of subaddress signal or a plurality of secondary telephone numbers, is inputted in accordance with ITU-T Recommendation T. 33 by said direct input means; and
display means for displaying an acknowledge message when the particular information is inputted from said direct input means and when the plurality of extension numbers as information of the sub address signal or a plurality of secondary telephone numbers are determined to be inputted in accordance with ITU-T Recommendation T. 33 by said determination means.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A device for diagnosing lung cancer using electromagnetic wave, comprising:
a receiving part to receive electromagnetic wave output from a transmitter ingested through the oral cavity and moving along with the digestive tract;
a measuring part to measure amplitude and phase information from the received electromagnetic wave; and
a controller to diagnose lung cancer based on the measured amplitude and phase information.
2. The device of claim 1, wherein the controller determines lung cancer in a case where at least one double dip or at least one double null is detected from the measured amplitude information.
3. The device of claim 1, wherein the controller determines lung cancer in a case where phase jump is detected from the measured phase information.
4. The device of claim 1, wherein the controller determines a position of pulmonary tumor based on the measured amplitude information, phase information and position information of the transmitter.
5. The device of claim 1, further comprising a communication part configured to transmit, to the transmitter, a signal for controlling an electromagnetic wave transmitting operation.
6. The device of claim 5, wherein the communication part receives a position and state information of the transmitter inside the human body.
7. The device of claim 1, wherein the receiving part includes a plurality of receiving modules which are contact or located near the surface of the human body and arranged in an array.
8. The device of claim 7, wherein when a dip is detected from the amplitude information measured from multiple transmission locations, the controller detects a volume location which connects the dip to the transmission location with a virtual line and determines it as the location of tumor.
9. The device of claim 7, wherein the controller acquires first amplitude information measured at a positive offset (+offset) where a vertical location of the transmitter is located lower than the receiving module, second amplitude information measured at a zero offset (0 offset) where a vertical location of the transmitter is located same to the receiving module, and third amplitude information measured at a negative offset (\u2212offset) where a vertical location of the transmitter is located higher than the receiving module,
wherein the controller detects positions of double dips corresponding to the positive offset, the zero offset and the negative offset, respectively, based on the first amplitude information, the second amplitude information and the third amplitude information, and
wherein the controller determines a volume position as a position of lung cancer, the volume formed by virtual straight lines which connect the detected positions of the double dips to a position of the transmitter, respectively.
10. The device of claim 1, wherein the transmitter transmits electromagnetic wave in a prescribed period.
11. The device of claim 5, wherein the transmitter includes a communication part for wired or wireless communication for exchange of the above information.
12. A method for diagnosing lung cancer, comprising:
receiving electromagnetic wave generated from a transmitter ingested through the human oral cavity and moving along with the digestive tract;
measuring amplitude and phase information from the received electromagnetic wave; and
diagnosing lung cancer based on the measured amplitude and phase information.
13. The method of claim 12, wherein if at least one double dip or at least one double null is detected from the measured amplitude information, it is determined that lung cancer has occurred.
14. The method of claim 12, wherein if phase jump is detected from the measured phase information, it is determined that lung cancer has occurred.
15. The method of claim 12, further comprising determining a position of pulmonary tumor based on the measured amplitude information, the measured phase information, and position information of the transmitter.
16. The method of claim 12, further comprising transmitting, to the transmitter, a signal for controlling an electromagnetic wave transmission operation.
17. The method of claim 16, further comprising receiving a position and state information of the transmitter inside the human body, from the transmitter.
18. The method of claim 12, wherein in the step of determining a position of pulmonary tumor, when a dip is detected from the amplitude information measured from multiple transmission locations, a volume location which connects the dip to the transmission location with a virtual line is detected, and it is determined as the location of tumor.
19. The method of claim 12, wherein in the step of receiving electromagnetic wave output from the transmitter, electromagnetic wave is received from a positive off set (+offset) where a vertical location of the transmitter is located lower than a receiving module, a zero offset (0 offset) where the vertical location is located same to the receiving module, and a negative offset (\u2212offset) where the vertical location is located higher than the receiving module.
20. The method of claim 19, wherein in the step of determining a position of pulmonary tumor, a volume location which connects the dip to the transmission location with a virtual line is detected, based on position information of a double dip and the transmitter, the information acquired from amplitude information measure from each offset position, and the volume location is determined as a position of pulmonary tumor.