Effects of Noise
In general, it is plausible to suppose that we should prefer peace and quiet to noise. And yet most of us have had the experience of having to adjust to sleeping in the mountains or the countryside because it was initially ‘too quiet', an experience that suggests that humans are capable of adapting to a wide range of noise levels. Research supports this view. For example, Glass and Singer (1972) exposed people to short bursts of very loud noise and then measured their ability to work out problems and their physiological reactions to the noise. The noise was quite disruptive at first, but after about four minutes the subjects were doing just as well on their tasks as control subjects who were not exposed to noise. Their physiological arousal also declined quickly to the same levels as those of the control subjects.
But there are limits to adaptation and loud noise becomes more troublesome if the person is required to concentrate on more than one task. For example, high noise levels interfered with the performance of subjects who were required to monitor three dials at a time, a task not unlike that of an aeroplane pilot or an air-traffic controller (Broadbent, 1957). Similarly, noise did not affect a subject's ability to track a moving line with a steering wheel, but it did interfere with the subject's ability to repeat numbers while tracking (Finkelman and Glass, 1970).
Probably the most significant finding from research on noise is that its predictability is more important than how loud it is. We are much more able to ‘tune out' chronic background noise, even if it is quite loud, than to work under circumstances with unexpected intrusions of noise. In the Glass and Singer study, in which subjects were exposed to bursts of noise as they worked on a task, some subjects heard loud bursts and others heard soft bursts. For some subjects, the bursts were spaced exactly one minute apart (predictable noise); others heard the same amount of noise overall, but the bursts occurred at random intervals (unpredictable noise). Subjects reported finding the predictable and unpredictable noise equally annoying, and all subjects performed at about the same level during the noise portion of the experiment. But the different noise conditions had quite different after-effects when the subjects were required to proofread written material under conditions of no noise. As shown in Table 1 the unpredictable noise produced more errors in the later proofreading task than predictable noise; and soft, unpredictable noise actually produced slightly more errors on this task than the loud, predictable noise.
Apparently, unpredictable noise produces more fatigue than predictable noise, but it takes a while for this fatigue to take its toll on performance.
Predictability is not the only variable that reduces or eliminates the negative effects of noise. Another is control. If the inpidual knows that he or she can control the noise, this seems to eliminate both its negative effects at the time and its after-effects. This is true even if the inpidual never actually exercises his or her option to turn the noise off (Glass and Singer, 1972). Just the knowledge that one has control is sufficient.
The studies discussed so far exposed people to noise for only short periods and only transient effects were studied. But the major worry about noisy environments is that living day after day with chronic noise may produce serious, lasting effects. One study, suggesting that this worry is a realistic one, compared elementary school pupils who attended schools near Los Angeles's busiest airport with students who attended schools in quiet neighbourhoods (Cohen et al., 1980). It was found that children from the noisy schools had higher blood pressure and were more easily distracted than those who attended the quiet schools. Moreover, there was no evidence of adaptability to the noise. In fact, the longer the children had attended the noisy schools, the more distractible they became. The effects also seem to be long lasting. A follow-up study showed that children who were moved to less noisy classrooms still showed greater distractibility one year later than students who had always been in the quiet schools (Cohen et al, 1981). It should be noted that the two groups of children had been carefully matched by the investigators so that they were comparable in age, ethnicity, race, and social class.
Table 1: Proofreading Errors and Noise
Choose the correct letter, A, B, C or D.
Write the correct letter in boxes 27-29 on your answer sheet.
题目定位词:difficulty sleeping in the mountains
答案位置:第1段第2句
题解:根据题目中的difficulty sleeping in the mountains定位到原文第1段第2句。原文的意思是人们是有能力去适应各种程度的噪音的。D选项能反映同样的信息,故为答案。
题目定位词:noise experiment
答案位置:第1段第4句
题解:本题可以用排除法解决。题目是要求表述试验的结果。A 选项的意思是“在安静的环境下,解决问题要容易得多。”而原文的信息是“一开始的时候,噪音对实验者的干扰是相当大的,但是大概四分钟之后,这些人的任务完成情况就和那些被置于噪音环境下的参照实验者所完成的一样好”,因此可以排除。B 选项的意思“生理刺激会阻挠工作。”原文没有相关的信息。D 选项的意思是 “受控试验者的生理刺激下降很快。”而原文相关的表述是“人们对噪音的生理 刺激也很快就下降到和那些参照实验者一样的程度”,故也可排除。只有C 选项和原文“大概四分钟之后,这些人的任务完成情况就和那些未被置于噪音环境下的参照实验者所完成的一样好”的信息是一致的。
题目定位词:not to interfere with
答案位置:第2段第1句
题解:根据题目的not likely to interfere with定位到原文第2段第1句话“尤其当一个人要同时专注于不止一个任务时,高分贝噪音的就会造成较多麻烦。”A选项的意思与其一致。

