| Literature DB >> 30096782 |
Nichole M Chapel1, Jeffrey R Lucas2, Scott Radcliffe3, Kara R Stewart4, Donald C Lay5.
Abstract
Though many studies focused on piglet crushing utilizing piglet vocalizations to test sow response, none have verified the properties of test vocalizations against actual crushing events. Ten sows were observed 48 h after parturition, and crushing events were recorded from all sows. When a crushing event occurred, a second piglet within the same litter was used to solicit a vocalization through manual restraint to compare restrained piglets' call properties to those of crushed piglets'. A total of 659 Restrained calls and 631 Crushed calls were collected. Variables were gathered at the loudest point in a call, and as an average across the entire call. Crushed piglets had a lower fundamental frequency (p < 0.01; Crushed: 523.57 ± 210.6 Hz; Restrained: 1214.86 ± 203.2 Hz) and narrower bandwidth (p < 0.01; Crushed: 4897.01 ± 587.3 Hz; Restrained: 6674.99 ± 574.0 Hz) when analyzed at the loudest portion of a call. Overall, piglets which were crushed had a lower mean peak frequency than those which were restrained (p = 0.01; 1497.08 ± 239.4 Hz and 2566.12 ± 235.0 Hz, respectively). Future research should focus on measuring sow reactivity to Crushed and Restrained piglets to continue to improve research practices.Entities:
Keywords: piglet crushing; sow-piglet communication; swine vocalization
Year: 2018 PMID: 30096782 PMCID: PMC6115786 DOI: 10.3390/ani8080138
Source DB: PubMed Journal: Animals (Basel) ISSN: 2076-2615 Impact factor: 2.752
Figure 1Representative spectrograms recorded from piglets in two different conditions. (a) Crushed by a sow; (b) Restrained by a human handler.
Parameters measured on piglet calls produced during manual restraint by a human or during crushing by sows during the first 48 h of life.
| Parameter | Description |
|---|---|
| Total Duration; s | Total time from the onset to the end of a call |
| Start to peak; s | Distance from the beginning of the call until the loudest element is reached |
| Peak Frequency; Hz | Loudest frequency found within a call |
| Peak Amplitude; dB | Measurement of the highest energy within a call |
| Minimum frequency; Hz | The lowest frequency within a call above the threshold (30 dB) |
| Maximum frequency; Hz | The highest frequency within a call above the threshold (30 dB) |
| Bandwidth; Hz | The difference between the minimum and maximum frequency |
| Fundamental frequency, Hz | Lowest frequency in a distinct harmonic structure |
| First formant, Hz | First detectable concentration of frequencies forming a band structure within a call |
| Second formant, Hz | Second detectable concentration of frequencies forming a band structure within a call |
| Quartile 25%; Hz | Frequency found at 25% of the total energy in call |
| Quartile 50%; Hz | Frequency found at 50% of the total energy in call |
| Quartile 75%; Hz | Frequency found at 75% of the total energy in call |
| Entropy | The randomness within a call where zero is a pure-tone and one is completely random noise |
| Harmonic-to-noise ratio | Ratio of the degree of harmonic sound to additional noise produced within a call |
Figure 2Time parameters of calls produced by piglets during manual restraint by a human handler (n = 10; 659 calls total) or during a crushing event by a sow (n = 10; 631 calls total) in the first 48 h of life. (a) Total duration of each call produced; (b) Start to peak within each call.
Sound parameters measured on piglet calls collected during manual restraint by a human (n = 10; 659 calls total) or during crushing by a sow (n = 10; 631 calls total) during the first 48 h of life.
| Parameter | Restrained (max) | Crushed (max) | Restrained (mean) | Crushed (mean) | ||
|---|---|---|---|---|---|---|
| Peak Frequency; Hz | 2953.74 ± 335.3 | 1568.27 ± 343.8 | 0.01 | 2566.12 ± 235.0 | 1497.08 ± 239.4 | 0.01 |
| Peak Amplitude; dB | 85.88 ± 1.5 | 82.14 ± 1.6 | 0.11 | 76.59 ± 1.6 | 73.83 ± 1.6 | 0.24 |
| Minimum frequency; Hz | 972.74 ± 121.6 | 358.96 ± 127.8 | 0.001 | 1130.08 ± 155.0 | 441.27 ± 158.2 | 0.006 |
| Maximum frequency; Hz | 7619.69 ± 644.8 | 5293.22 ± 656.4 | 0.02 | 5759.86 ± 426.7 | 4392.23 ± 433.3 | 0.37 |
| Bandwidth; Hz | 6674.99 ± 574.0 | 4897.01 ± 587.3 | 0.04 | 4587.47 ± 334.5 | 3904.95 ± 342.1 | 0.17 |
| Fundamental frequency, Hz | 1214.86 ± 203.2 | 523.57 ± 210.6 | 0.03 | 965.96 ± 149.6 | 619.72 ± 151.0 | 0.12 |
| First formant, Hz | 2523.07 ± 118.2 | 1989.74 ± 121.0 | 0.005 | 2281.49 ± 98.3 | 1984.69 ± 100. | 0.05 |
| Second formant, Hz | 3603.89 ± 85.5 | 3395.68± 87.9 | 0.11 | 3533.48 ± 70.6 | 3414.48 ± 72.0 | 0.25 |
| Quartile 25%; Hz | 2866.29 ± 279.0 | 1630.95 ± 285.4 | 0.006 | 2474.03 ± 196.8 | 1701.45 ± 199.7 | 0.01 |
| Quartile 50%; Hz | 3759.52 ± 322.5 | 2338.96 ± 328.4 | 0.006 | 3899.07 ± 258.9 | 2966.97 ± 262.1 | 0.02 |
| Quartile 75%; Hz | 5630.20 ± 436.1 | 3919.92 ± 442.7 | 0.01 | 5943.15 ± 362.1 | 4887.73 ± 365.8 | 0.06 |
| Entropy 1 | 0.40 ± 0.1 | 0.36 ± 0.1 | 0.35 | 0.48 ± 0.1 | 0.46 ± 0.1 | 0.69 |
| Harmonic-to-noise ratio | 16.49 ± 2.5 | 19.21 ± 2.5 | 0.46 | 18.54 ± 2.8 | 20.07 ± 2.8 | 0.71 |
1 Refer to Table 1 for description.