Wow! 10 out of 10 for Lory... Here I have to do a proper analysis, complete with FFT and phase comparison.
General information about the audio track:
We remind ourselves that the bitrate is calculated using the formula: b = 8 * f / t where f is the file size expressed in bytes (1MByte = 1024KByte and 1KByte = 1024Byte), therefore 1.87MB = 196083712 Bytes, and t is the time in seconds. In this case, there is a reading error regarding the track information for the time, which is nonetheless 3:59, so 239 seconds.
A bitrate this low already gives us an idea of the poor audio quality, even if the channel mode is Joint Stereo (which allows us to recover something in terms of bits per channel at such low bitrates).
What we must focus on, which is quite important, is the Sample Rate, i.e., the number of samples per second measured by the audio sampler.
22050 samples per second means that, according to the sampling theorem, the maximum physical frequency measurable and samplable by the sampler is approximately 10000 Hz. This is a very important piece of data. Given that the nominal human hearing range is between 20Hz and 20 KHzāeven though in reality it is already good to consider 15 KHz as a good audible thresholdāthe higher sounds, even if they can no longer be recognized on their own, still produce psychoacoustic effects when combined with other sounds. Having a sample that records up to a threshold of 10000 Hz means losing a lot of information. Not only that... In a piano context, this means that when playing the highest C(8) on the keyboard, the recording is only able to capture the second harmonic at about 8500 Hz. The third harmonic is already out of reach.
A spectral analysis confirms these expectations...
For this spectral analysis, I used a native plugin within Logic. What you see are the maximum peaks after playing the entire piece. On the x-axis are the frequencies, and on the y-axis are the amplitudes.
We observe that the audible frequencies above the -35 threshold start from 50 Hz to 8 KHz; however, let's consider the real sonic sludge starting from -20dB onwards. Our field narrows to frequencies in the order of 150 Hz up to 4KHz. In short, the recording has already eaten up a large part of the audible frequencies.
Let's analyze the phase correlation to see how Joint Stereo encoding has affected spatiality.
As we can see, the file has no spatiality whatsoever. It is mono stereo!
In other words, it makes us think that at the time of capture, the audio was captured by a camera microphone, split from mono to stereo. At the moment of conversion, there were no encoding bits at low frequencies that could be differentiated; therefore, Joint Stereo did not produce any useful result for its characteristic. We can thus consider the file MONO, or technically false stereo with a 32KBit rate per channel.
From a dynamics standpoint, Lory hit the nail on the head. All "entry-level" cameras have an autogain system that focuses on the frequency spectrum with greater amplitude by decreasing others (a sort of adaptive band-pass filter); this technique serves to mask unwanted noises in the recording (e.g., wind, rough sea, background noise) in order to enhance the volume of the person speaking, who is most likely in front of the camera microphone. The problem is that this continuous rising and falling of dynamics vs. frequency also destroys frequencies that could be interesting in music because they characterize the timbre of the instrument (let's not forget that timbre is determined by the Fourier summation of the fundamental with all its partials, but if the partials are cut, the timbre is inevitably modified).
The demonstration of this adaptation comes from an non-existent dynamic range (low sound pressure sounds recorded at the same level as high sound pressure sounds); as can be seen in the following slide, the average dynamics is very close to the peak.
Tall these words just to say that, in my opinion, this video has no reason to exist and provides no qualitative indication regarding the quality of the sounds being compared.
To pose the same question on the level of images, it would be like saying...
Which photo among these two is the most beautiful of the Colosseum in Rome?
It goes without saying that the low quality of the photos does not allow us to express an opinion.