Claims
- 1. An electronic string musical instrument of a type in which musical tones are generated on the basis of pitches extracted from an input waveform signal produced by the vibration of a string, comprising:
- pitch extracting means for extracting pitches from the input waveform signal;
- input signal check means for checking whether said input waveform signal is present; and
- commanding means (a) for, when said input signal check means detects a start of the presence of said input waveform signal, providing a sounding start command to first generate a musical tone with a predetermined pitch corresponding to maximum string length in which no pitch designation operation is manipulated on an open string by a performer and (b) for, when the pitch of said input waveform signal is extracted by said pitch extracting means, providing a command to change the pitch of said generated musical tone to the extracted pitch.
- 2. The electronic string musical instrument according to claim 1, in which said pitch extracting means comprises:
- peak detecting means for detecting at least one of a positive and a negative peak point in the input waveform signal;
- zero-cross point detecting means for detecting zero-cross points in said input waveform signal; and
- means for detecting at least one of a time interval (t1) between successive first zero-cross points detected by said zero-cross point detecting means after after respective ones of the positive peak points are detected by said peak point detecting means and a time interval (t2) between successive first zero-cross points detected by said zero-cross point detecting means after respective ones of the negative peak points are detected by said peak point detecting means.
- 3. An electronic musical instrument of a type in which musical tones are generated on the basis of pitches contracted from an input waveform signal comprising:
- detecting means for, upon initiation of said input waveform signal, detecting two periods of said input waveform signal within a time duration shorter than two periods of said input waveform signal; and
- commanding means for when the two periods detected by said detecting means are substantially equal to each other, providing a command to initiate generation of a musical tone at a frequency whose period corresponds to a period of the input waveform signal derived from at least one of the two detected periods of the input waveform signal.
- 4. The electronic musical instrument according to claim 3, in which said detecting means detects said two periods by detecting a time duration (t1) between successive first zero-cross points appearing after respective positive peak points of said input waveform signal that are detected, and by detecting a time duration (t2) between successive first zero-cross points appearing after respective negative peak points of said input waveform signal that are detected.
- 5. The electronic musical instrument according to claim 3, in which said detecting means detects said two periods by detecting a time interval (T1) at which positive peak points appear and by detecting a time interval (T2) at which negative peak points appear.
- 6. An electronic string musical instrument of a type in which musical tones are generated on the basis of pitches extracted from signals produced by the vibrations of strings comprising:
- detecting means for detecting, when inputting of said input waveform signal is initiated, whether a rate of increase of peak values of the input waveform signal is steep or gentle;
- commanding means for, when said detecting means detects a gentle rate of increase of peak values of the input waveform signal, not providing a musical tone sounding command, and when said detecting means detects a steep rate of increase of peak values of the input waveform signal, providing a musical tone sounding command; and
- wherein said detecting means detects the steep or gentle rate of increase of the input waveform signal by using at least one of (a) a difference between and (b) a ratio of a previously detected peak value of said input waveform signal and a presently detected peak value of the input waveform signal.
- 7. The electronic string musical instrument according to claim 6, further comprising pitch extracting means for extracting a pitch data from said input waveform signal, said pitch extracting means comprising:
- peak detecting means for detecting at least one of a positive and a negative peak point in the input waveform signal;
- zero-cross point detecting means for detecting zero-cross points in said waveform signal; and
- means for detecting at least one of a time interval (t1) between successive first zero-cross points detected by said zero-cross point detecting means after respective positive peak points are detected by said peak point detecting means and a time interval (t2) between successive first zero-cross points detected by said zero-cross point detecting means after respective negative peak points are detected by said peak point detecting means.
- 8. An electronic string musical instrument of a type in which musical tones are generated on the basis of pitches extracted from input waveform signals produced by the vibrations of strings, comprising:
- detecting means for detecting positive and negative peak points of the input waveform signal;
- measuring means for measuring a time interval in a manner that successively obtained positive and negative peak points of said input waveform signal occurring immediately after inputting of said input waveform signal is initiated are obtained, and the absolute values thereof are compared, and the peak point or a point relating to the peak point of a larger value is used as a starting point of said time interval, and an end point of said time interval is the peak point or a point relating to a peak point which is the same polarity as that of the peak point used as the starting point, and satisfies a predetermined condition; and
- commanding means for giving a command to generate a musical tone at a frequency based on said time interval measured by said measuring means.
- 9. The electronic string musical instrument according to claim 8, in which the point relating to said peak point is a zero-cross point following said peak point having the same polarity as that of the starting peak point.
- 10. The electronic string musical instrument according to claim 8, in which the point relating to said peak point is a zero-cross point immediately before said peak point having the same polarity as that of the starting peak point.
- 11. An electronic musical instrument of a type in which musical tones are generated on the basis of pitches extracted from an input waveform signal comprising:
- first measuring means for measuring a given time period of one wave length of said input waveform signal;
- second measuring means for measuring a given time period of one wave length partially overlapping said one wave length as measured by said first measuring means;
- third measuring means for measuring a given time period of one wave length partially overlapping said one wave length as measured by said second measuring means;
- judging means for judging whether the given time periods measured by said first to third measuring means are substantially equal to one another; and
- commanding means for, when said given time periods are substantially equal, providing a command to change the frequency of a generated musical tone based on said given time periods as measured by said first to third measuring means after the musical tone is generated.
- 12. An electronic string musical instrument of a type in which musical tones are generated on the basis of pitches extracted from input waveform signals produced by the vibration of strings, comprising:
- detecting means for detecting a variation of peak values in said input waveform signal; and
- commanding means for, when said detecting means detects a rapid increase of a peak value of said input signal waveform during sounding of a musical tone, repeating a command to start the sounding of said musical tone.
- 13. The electronic string musical instrument according to claim 12, in which said detecting means detects a rapid increase of said input waveform signal based on (a) a difference between or (b) a ration of the peak levels of the input waveform signal as previously detected and as presently detected.
- 14. The electronic string musical instrument according to claim 12, further comprising pitch extracting means for extracting pitches of said input waveform signal, said pitch extracting means comprising:
- peak detecting means for detecting at least one of a positive and a negative peak point in an input waveform signal;
- zero-cross point detecting means for detecting zero-cross points in said waveform signal; and
- pitch detecting means for detecting pitches of said input waveform signal by detecting a time interval (t1) between successive first zero-cross points detected by said zero-cross point detecting means after respective positive peak points are detected by said peak point detecting means and a time interval (t2) between successive first zero-cross points detected by said zero-cross point detecting means after respective negative peak points are detected by said peak point detecting means.
- 15. An electronic string musical instrument of a type in which musical tones are generated on the basis of pitches extracted from input waveform signals produced by the vibration of strings, comprising:
- frequency measuring means for measuring a frequency of the input waveform signal;
- sounding commanding means for commanding generation of a musical tone based on the measured frequency;
- detecting means for detecting positive and negative peak values of said input waveform signal;
- judging means for determining whether difference values exist between the positive and negative peak values detected by said detecting means and whether those values as previously detected exceed a predetermined value; and
- sounding stop commanding means for commanding the stop of the musical tone sounding when said judging means detects that the difference values exceed the predetermined value.
- 16. The electronic string musical instrument according to claim 15, wherein said frequency measuring means comprises:
- peak detecting means for detecting at least one of a positive and a negative peak point in an input waveform signal;
- zero-cross point detecting means for detecting zero-cross points in said input waveform signal; and
- pitch detecting means for detecting pitches of said input waveform signal by detecting at least one of a time interval (t1) between successive first zero-cross points detected by said zero-cross point detecting means after respective positive peak points are detected by said peak point detecting means and a time interval (t2) between successive first zero-cross points detected by said zero-cross point detecting means after respective peak points are detected by said peak point detecting means.
- 17. An electronic musical instrument of a type in which musical tones are generated on the basis of pitches extracted from an input waveform signal comprising:
- frequency measuring means for measuring a frequency of said input waveform signal;
- sounding commanding means for providing a command to generate a musical tone based on the frequency measured by said frequency measuring means;
- level judging means for judging whether an amplitude level of said input waveform signal is below a predetermined value;
- continue judging means for judging whether the input signal amplitude level below the predetermined level continues for a predetermined period of time; and
- sounding stop commanding means for stopping sounding when said continue judging means judges that said input signal amplitude level state continues for the predetermined time.
- 18. The electronic musical instrument according to claim 17, in which said frequency measuring means comprises:
- peak detecting means for detecting at least one of a positive and a negative peak point in an input waveform signal;
- zero-cross point detecting means for detecting zero-cross points in said waveform signal; and
- pitch detecting means for detecting pitches of said input waveform signal by detecting at least one of a time interval (t1) between successive first zero-cross points detected by said zero-cross point detecting means after respective positive peak points are detected by said peak point detecting means and a time interval (t2) between successive first zero-cross points detected by said zero-cross point detecting means after respective negative peak points are detected by said peak point detecting means.
- 19. An electronic string musical instrument of a type in which musical tones are generated on the basis of pitches extracted from input waveform signals produced by the vibration of strings, comprising:
- memory means for storing pitch data representing an extracted pitch;
- comparing means for comparing pitch data representing a previously extracted pitch and stored in said memory means with pitch data representing a presently extracted pitch; and
- control means for, when a comparison result of said comparing means shows that the presently extracted pitch is about one octave higher than the previously extracted pitch represented by the pitch data read out from said memory means, (a) judging that harmonics are generated, and (b) for outputting a sounding stop command to stop the sounding of a musical tone.
- 20. The electronic string musical instrument according to claim 19, further comprising pitch extracting means for extracting pitches from said input waveform signal, said pitch extracting means comprising:
- peak detecting means for detecting at least one of positive and negative peak points in an input waveform signal;
- zero-cross point detecting means for detecting zero-cross points in said waveform signal; and
- pitch detecting means for detecting pitches of said input waveform signal by detecting a time interval (t1) between successive first zero-cross points detected by said zero-cross point detecting means after respective positive peak points are detected by said peak point detecting means and a time interval (t2) between successive first zero-cross points detected by said zero-cross point detecting means after respective positive peak points are detected by said peak point detecting means.
- 21. An electronic musical instrument having a pitch detecting means for detecting a fundamental pitch frequency from an input waveform signal, and commanding means for commanding sound source means to generate a musical tone at a pitch based on said fundamental pitch frequency as detected by said pitch detecting means, comprising:
- time count means for, every time said commanding means provides a sounding start command or a pitch change command to said sound source means, measuring the time elapsed from when it is given; and
- means for causing said commanding means to provide a new pitch change command based on the fundamental pitch frequency as detected by said pitch detecting means after said time count means measure a predetermined time.
- 22. The electronic musical instrument according to claim 21, in which said pitch detecting means comprises:
- peak detecting means for detecting at least one of a positive and a negative peak point in an input waveform signal;
- zero-cross point detecting means for detecting zero-cross points in said waveform signal; and
- detecting means for detecting pitches of said input waveform signal by detecting a time interval (t1) between successive first zero-cross points detected by said zero-cross point detecting means after respective positive peak points are detected by said peak point detecting means and a time interval (t2) between successive first zero-cross points detected by said zero-cross point detecting means after respective negative peak points are detected by said peak point detecting means.
- 23. An electronic musical instrument having a plurality of strings, comprising:
- a plurality of vibration detecting means for detecting vibrations of corresponding ones of the plurality of strings, respectively, and each of the plurality of vibration detecting means including:
- (a) sensor means for sensing a vibration of a corresponding string to obtain an electric signal representative of the vibration,
- (b) low-pass filtering means coupled to said sensor means for filtering high frequency components of the electric signal to produce a filtered electric signal, a cut-off frequency of the low-pass filtering means being determined by a note range or the corresponding string,
- (c) positive peak detecting means coupled to the low-pass filtering means for detecting positive peak points in the filtered electric signal output from the low-pass filtering means, and
- (d) negative peak detecting means coupled to the low-pass filtering means for detecting negative peak points in the filtered electric signal output from the low-pass filtering means; and
- processing means including a CPU which is coupled to the positive peak detecting means and the negative peak detecting means of each of the plurality of vibration detecting means for executing pitch extracting and designating operations for each string time-divisionally, said CPU time-divisionally executing for each string:
- (a) identifying, from all positive peak points detected by said positive peak detecting means, a first positive peak point succeeding to the negative peak point detected by said negative peak detecting means;
- (b) identifying, from all negative peak points a detected by said negative peak detecting means, a first negative peak point succeeding to the positive peak point detected by said positive peak detecting means;
- (c) measuring at least one of a time duration between first positive peak points succeeding to negative peak points and a time duration between first negative peak points succeeding to positive peak points; and
- (d) outputting pitch data to determine tone pitches from said at least one measured time duration.
- 24. An electronic musical instrument having a plurality of strings, comprising:
- a plurality of vibration detecting means for detecting vibrations of corresponding ones of the plurality of strings, respectively, and each of the plurality of vibration detecting means including:
- (a) sensor means for sensing a vibration of a corresponding string to obtain an electric signal representative of the vibration,
- (b) low-pass filtering means coupled to said sensor means for filtering high frequency components of the electric signal to produce a filtered electric signal, a cut-off frequency of the low-pass filtering means being determined by a note range of the corresponding string,
- (c) positive peak detecting means coupled to the low-pass filtering means for detecting positive peak points in the filtered electric signal output from the low-pass filtering means, and
- (d) negative peak detecting means coupled to the low-pass filtering means for detecting negative peak points in the filtered electric signal output from the low-pass filtering means; and
- processing means coupled to the positive peak detecting means and the negative peak detecting means of each of the plurality of vibration detecting means for executing pitch extracting and designating operations for each string time-divisionally, and comprising, for each string:
- (a) means for identifying, from all positive peak points detected by said positive peak detecting means, a first positive peak point succeeding to the negative peak point detected by said negative peak detecting means;
- (b) means for measuring a time duration between the first positive peak points succeeding to negative peak points; and
- (c) means for outputting pitch data to determine tone pitches from said at least one measured time duration.
- 25. An electronic musical instrument having a plurality of strings, comprising:
- a plurality of vibration detecting means for detecting vibrations of corresponding ones of the plurality of strings, respectively, and each of the plurality of vibration detecting means including:
- (a) sensor means for sensing a vibration of a corresponding string to obtain an electric signal representative of the vibration,
- (b) low-pass filtering means coupled to said sensor means for filtering high frequency components of the electric signal to produce a filtered electric signal, a cut-off frequency of the low-pass filtering means being determined by a note range of the corresponding string,
- (c) positive peak detecting means coupled to the low-pass filtering means for detecting positive peak points in the filtered electric signal output from the low-pass filtering means, and
- (d) negative peak detecting means coupled to the low-pass filtering means for detecting negative peak points in the filtered electric signal output from the low-pass filtering means; and
- processing means coupled to the positive peak detecting means and the negative peak detecting means of each of the plurality of vibration detecting means for executing pitch extracting and designating operations for each string time-divisionally, and comprising, for each string:
- (a) means for identifying, from all negative peak points detected by said negative peak detecting means, a first negative peak point succeeding to the positive peak point detected by said positive peak detecting means;
- (b) means for measuring a time duration between the first negative peak points succeeding to positive peak points; and
- (c) means for outputting pitch data to determine tone pitches from said at least one measured time duration.
- 26. An electronic musical instrument having a plurality of strings, comprising:
- a plurality of vibration detecting means for detecting vibrations of corresponding ones of the plurality of strings, respectively, and each of the plurality of vibration detecting means including:
- (a) sensor means for sensing a vibration of a corresponding string to obtain an electric signal representative of the vibration,
- (b) low-pass filtering means coupled to said sensor means for filtering high frequency components of the electric signal to produce a filtered electric signal, a cut-off frequency of the low-pass filtering means being determined by a note range of the corresponding string,
- (c) peak detecting means coupled to the low-pass filtering means for detecting at least one of a positive and a negative peak point in the filtered electric signal output from the low-pass filtering means, and
- (d) zero-cross point detecting means for detecting zero-cross points in the filtered electric signal output from the low-pass filtering means; and
- processing means coupled to the peak detecting means and the zero-cross point detecting means of each of the plurality of vibration detecting means for executing pitch extracting and designating operations for each string time-divisionally, and comprising, for each string:
- (a) means for extracting pitches of the electric signal to produce pitch data by detecting at least one of a time interval (t1) between successive first zero-cross points detected by said zero-cross point detecting means after respective positive peak points are detected by said peak detecting means and a time interval (t2) between successive first zero-cross points detected by said zero-cross point detecting means after respective negative peak points are detected by said peak detecting means, and
- (b) means for outputting said pitch data to determine tone pitches in accordance with the extracted pitches of the electrical signal.
- 27. An electronic musical instrument having a plurality of strings, comprising:
- a plurality of vibration detecting means for detecting vibrations of corresponding ones of the plurality of strings, respectively, and each of the plurality of vibration detecting means including:
- (a) sensor means for sensing a vibration of a corresponding string to obtain an electric sensor output signal representative of the vibration,
- (b) positive peak detecting means coupled to said sensor means for detecting positive peak points in the electric sensor output signal, and
- (c) negative peak detecting means coupled to said sensor means for detecting negative peak points in the electric sensor output signal; and
- processing means coupled to the positive peak detecting means and the negative peak detecting means of each of the plurality of vibration detection means for executing pitch extracting and designating operations for each string time-divisionally, and comprising, for each string:
- (a) means for identifying, from all positive peak points detected by said positive peak detecting means, a first positive peak point succeeding to the negative peak point detected by said negative peak detecting means,
- (b) means for identifying, from all negative peak points detected by said negative peak detecting means, a first negative peak point succeeding to the positive peak point detected by said positive peak detecting means,
- (c) means for measuring at least one of a time duration between successive ones of the first positive peak points succeeding negative points and a time duration between successive ones of the first negative peak points succeeding positive peak points, and
- (d) means for determining tone pitches from said at least one measured time duration.
- 28. The pitch detection apparatus according to claim 27, wherein said sensor means includes low-pass filtering means for filtering high frequency components of the electric signal, and a cut-off frequency of the low-pass filtering means is determined by a note range of the corresponding string.
- 29. An electronic musical instrument having a plurality of strings, comprising:
- a plurality of vibration detecting means for detecting vibrations of corresponding ones of the plurality of strings, respectively, and each of the plurality of vibration detecting means including:
- (a) sensor means for sensing a vibration of a corresponding string to obtain an electric sensor output signal representative of the vibration,
- (b) positive peak detecting means coupled to said sensor means for detecting positive peak points in the electric sensor output signal, and
- (c) negative peak detecting means coupled to said sensor means for detecting negative peak points in the electric sensor output signal; and
- processing means coupled to the positive peak detecting means and the negative peak detecting means of each of the plurality of vibration detection means for executing pitch extracting and designating operations for each string time-divisionally, and comprising, for each string:
- (a) means for identifying, from all positive peak points detected by said positive peak detecting means, a first positive peak point succeeding to the negative peak point detected by said negative peak detecting means,
- (b) means for measuring a time duration between successive ones of the first positive peak points succeeding to negative peak points, and
- (c) means for determining tone pitches from said measured time duration.
- 30. The pitch detection apparatus according to claim 29, wherein said sensor means includes low-pass filtering means for filtering high frequency components of the electrical signal, and a cut-off frequency of the low-pass filtering means is determined by a note range of the corresponding string.
- 31. An electronic musical instrument having a plurality of strings, comprising:
- a plurality of vibration detecting means for detecting vibrations of corresponding ones of the plurality of strings, respectively, and each of the plurality of vibration detecting means including:
- (a) sensor means for sensing a vibration of a corresponding string to obtain an electric sensor output signal representative of the vibration,
- (b) positive peak detecting means coupled to said sensor means for detecting positive peak points in the electric sensor output signal; and
- (c) negative peak detecting means coupled to said sensor means for detecting negative peak points in the electric sensor output signal; and
- processing means coupled to the positive peak detecting means and the negative peak detecting means of each of the plurality of vibration detection means for executing pitch extracting and designating operations for each string time-divisionally, and comprising, for each string:
- (a) means for identifying, from all negative peak points detected by said negative peak detecting means, a first negative peak point succeeding to the positive peak point detected by said positive peak detecting means,
- (b) means for measuring a time duration between successive ones of the first negative peak points succeeding to positive peak points, and
- (c) means for determining tone pitches from said measured time duration.
- 32. The pitch detection apparatus according to claim 31, wherein said sensor means includes low-pass filtering means for filtering high frequency components of the electric signal, and a cut-off frequency of the low-pass filtering means is determined by a note range of the corresponding string.
- 33. A pitch detection apparatus for an electronic stringed musical instrument having a plurality of strings to be plucked, comprising:
- a plurality of vibration detecting means for detecting vibrations of the strings, and each of the vibration detecting means including:
- (a) sensor means for sensing a vibration of a corresponding string to obtain an electric signal representative of the vibration,
- (b) peak detecting means coupled to the sensor means for detecting at least one of a positive and a negative peak point in the filtered electric signal output from the sensor means, and
- (c) zero-cross point detecting means for detecting zero-cross points in the electric signal output from the sensor means; and
- processing means coupled to the respective peak detecting means and the respective zero-cross point detecting means of each of the plurality of vibration detecting means for executing pitch extracting and designating operations for each string time-divisionally, and comprising, for each string:
- (a) means for extracting pitches of the electric signal by detecting at least one of a time interval (t1) between successive first zero-cross points detected by said zero-cross point detecting means after respective positive peak points are detected by said peak detecting means and a time interval (t2) between successive first zero-cross points detected by said zero-cross point detecting means after respective negative peak points are detected by said peak detecting means, and
- (b) means for determining tone pitches in accordance with the extracted pitches of the electrical signal.
- 34. The pitch detection apparatus according to claim 33, wherein said sensor means includes low-pass filtering means for filtering high frequency components of the electric signal, and a cut-off frequency of the low-pass filtering means is determined by a note range of the corresponding string.
- 35. An electronic string musical instrument of a type in which musical tones are generated in accordance with the vibrations of strings, comprising:
- detecting means for detecting, when inputting of said input waveform signal is initiated, whether a rate of increase of peak values of the input waveform signal is steep or gentle;
- commanding means for, when said detecting means detects a gentle rate of increase of peak values of the input waveform signal, not providing a musical tone sounding command, and when said detecting means detects a steep rate of increase of peak values of the input waveform signal, providing a musical tone sounding command; and
- wherein said detecting means detects the steep or gentle rate of increase of the input waveform signal by using at least one of (a) a difference between and (b) a ratio of a previously detected peak value of said input waveform signal and a presently detected peak value of the input waveform signal.
- 36. An electronic string musical instrument of a type in which musical tones are generated in accordance with the vibration of strings, comprising:
- detecting means for detecting a variation of peak values in said input waveform signal; and
- commanding means for, when said detecting means detects a rapid increase of a peak value of said input signal waveform during sounding of a musical tone, repeating a command to start the sounding of said musical tone.
- 37. The electronic string musical instrument according to claim 36, in which said detecting means detects a rapid increase of said input waveform signal based on (a) a difference between or (b) a ratio of the peak levels of the input waveform signal as previously detected and as presently detected.
- 38. An electronic string musical instrument of a type in which musical tones are generated in accordance with the vibration of strings, comprising:
- frequency measuring means for measuring a frequency of the input waveform signal;
- sounding commanding means for commanding generation of a musical tone having a designated frequency;
- detecting means for detecting positive and negative peak values of said input waveform signal;
- judging means for determining whether difference values exist between the positive and negative peak values detected by said detecting means and whether those values as previously detected exceed a predetermined value; and
- sounding stop commanding means for commanding the stop of the musical tone sounding when said judging means detects that the difference values exceed the predetermined value.
- 39. An electronic musical instrument of a type in which musical tones are generated in accordance with the vibration of strings comprising:
- sounding commanding means for providing a command to generate a musical tone having a designated frequency;
- level judging means for judging whether an amplitude level of said input waveform signal is below a predetermined value;
- continue judging means for judging whether the input signal amplitude level below the predetermined level continues for a predetermined period of time; and
- sounding stop commanding means for stopping sounding when said continue judging means judges that said input signal amplitude level state continues for the predetermined time.
Priority Claims (12)
Number |
Date |
Country |
Kind |
61-253487 |
Oct 1986 |
JPX |
|
61-282140 |
Nov 1986 |
JPX |
|
61-282142 |
Nov 1986 |
JPX |
|
61-283292 |
Nov 1986 |
JPX |
|
61-286228 |
Dec 1986 |
JPX |
|
61-285985 |
Dec 1986 |
JPX |
|
61-286745 |
Dec 1986 |
JPX |
|
61-314157 |
Dec 1986 |
JPX |
|
62-4714 |
Jan 1987 |
JPX |
|
62-50381 |
Mar 1987 |
JPX |
|
62-50382 |
Mar 1987 |
JPX |
|
62-76453 |
Mar 1987 |
JPX |
|
Parent Case Info
This application is a continuation of application Ser. No. 07/112, 780, filed Oct. 22, 1987, now abandoned.
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Continuations (1)
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Number |
Date |
Country |
Parent |
112780 |
Oct 1987 |
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