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首页> 外文期刊>BMJ Open >Using free text information to explore how and when GPs code a diagnosis of ovarian cancer: an observational study using primary care records of patients with ovarian cancer
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Using free text information to explore how and when GPs code a diagnosis of ovarian cancer: an observational study using primary care records of patients with ovarian cancer

机译:使用自由文本信息探索全科医生如何以及何时编写卵巢癌诊断:一项使用卵巢癌患者初级保健记录的观察性研究

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Background Primary care databases provide a unique resource for healthcare research, but most researchers currently use only the Read codes for their studies, ignoring information in the free text, which is much harder to access. Objectives To investigate how much information on ovarian cancer diagnosis is ‘hidden’ in the free text and the time lag between a diagnosis being described in the text or in a hospital letter and the patient being given a Read code for that diagnosis. Design Anonymised free text records from the General Practice Research Database of 344 women with a Read code indicating ovarian cancer between 1 June 2002 and 31 May 2007 were used to compare the date at which the diagnosis was first coded with the date at which the diagnosis was recorded in the free text. Free text relating to a diagnosis was identified (a) from the date of coded diagnosis and (b) by searching for words relating to the ovary. Results 90% of cases had information relating to their ovary in the free text. 45% had text indicating a definite diagnosis of ovarian cancer. 22% had text confirming a diagnosis before the coded date; 10% over 4?weeks previously. Four patients did not have ovarian cancer and 10% had only ambiguous or suspected diagnoses associated with the ovarian cancer code. Conclusions There was a vast amount of extra information relating to diagnoses in the free text. Although in most cases text confirmed the coded diagnosis, it also showed that in some cases GPs do not code a definite diagnosis on the date that it is confirmed. For diseases which rely on hospital consultants for diagnosis, free text (particularly letters) is invaluable for accurate dating of diagnosis and referrals and also for identifying misclassified cases.
机译:背景技术初级保健数据库为医疗保健研究提供了独特的资源,但是大多数研究人员目前仅将Read代码用于他们的研究,而忽略了自由文本中的信息,而后者很难访问。目的调查自由文本中“隐藏”了多少卵巢癌诊断信息,以及文本或医院来信中描述的诊断与为患者提供该诊断的读取代码之间的时间差。来自美国全科医学研究数据库的344名女性的设计匿名自由文本记录(带有Read代码,表明卵巢癌在2002年6月1日至2007年5月31日之间)用于比较诊断的首次编码日期和诊断的日期。记录在自由文本中。 (a)从编码诊断之日起和(b)通过搜索与卵巢有关的词,确定与诊断有关的自由文本。结果90%的病例在自由文本中都有与卵巢有关的信息。 45%的文字表明可以明确诊断出卵巢癌。 22%的人在编码日期之前有确认诊断的文字;之前4周的10%。 4名患者没有卵巢癌,只有10%的患者只有与卵巢癌代码有关的模棱两可或可疑的诊断。结论在自由文本中有大量与诊断有关的额外信息。尽管在大多数情况下,文本确认了编码的诊断结果,但它也表明,在某些情况下,GP在确诊之日并未对确定的诊断进行编码。对于依赖医院顾问进行诊断的疾病,自由文本(尤其是字母)对于准确确定诊断日期和转诊以及识别错误分类的病例非常有用。

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