| Literature DB >> 29177027 |
Elena Tutubalina1, Sergey Nikolenko1,2.
Abstract
Adverse drug reactions (ADRs) are an essential part of the analysis of drug use, measuring drug use benefits, and making policy decisions. Traditional channels for identifying ADRs are reliable but very slow and only produce a small amount of data. Text reviews, either on specialized web sites or in general-purpose social networks, may lead to a data source of unprecedented size, but identifying ADRs in free-form text is a challenging natural language processing problem. In this work, we propose a novel model for this problem, uniting recurrent neural architectures and conditional random fields. We evaluate our model with a comprehensive experimental study, showing improvements over state-of-the-art methods of ADR extraction.Entities:
Mesh:
Year: 2017 PMID: 29177027 PMCID: PMC5605929 DOI: 10.1155/2017/9451342
Source DB: PubMed Journal: J Healthc Eng ISSN: 2040-2295 Impact factor: 2.682
Figure 1The main architecture of our model. Word embeddings are given as input to the bidirectional LSTM network. Dashed arrows represent the input and output vectors of the network with dropout. The labels follow the BIO (Beginning Inside Outside) tagging scheme.
Results of the proposed models and baseline methods.
| Method | Exact | Partial | ||||
|---|---|---|---|---|---|---|
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| Baseline CRF | 0.6254 | 0.5972 | 0.6110 | 0.8145 | 0.7539 | 0.7521 |
| Feature-rich CRF | 0.6726 | 0.6532 | 0.6628 |
| 0.7646 | 0.7622 |
| 1-layer LSTM | 0.5798 | 0.6587 | 0.6167 | 0.8121 | 0.8065 | 0.7809 |
| 2-layer LSTM | 0.6362 | 0.7044 | 0.6686 | 0.8090 | 0.8495 | 0.8005 |
| 3-layer LSTM | 0.6588 | 0.7022 | 0.6798 | 0.8247 | 0.8323 | 0.7997 |
| 4-layer LSTM | 0.6689 | 0.7093 | 0.6885 | 0.8255 | 0.8280 | 0.8000 |
| 1-layer GRU | 0.5862 | 0.6772 | 0.6284 | 0.7995 | 0.8368 | 0.7900 |
| 2-layer GRU | 0.6384 | 0.7093 | 0.6720 | 0.8165 | 0.8338 | 0.8002 |
| 3-layer GRU | 0.6675 | 0.7191 | 0.6923 | 0.8151 | 0.8373 | 0.8009 |
| 4-layer GRU | 0.6565 |
| 0.6896 | 0.8006 |
| 0.8033 |
| 2-layer LSTM + CRF | 0.6947 | 0.6973 | 0.6960 | 0.8191 | 0.8161 | 0.7872 |
| 2-layer LSTM + CNN + CRF | 0.6809 | 0.7039 | 0.6922 | 0.8083 | 0.8488 | 0.7978 |
| 3-layer LSTM + CNN + CRF | 0.6868 | 0.7066 | 0.6965 | 0.8270 | 0.8488 |
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| 3-layer GRU + CNN + CRF |
| 0.7082 |
| 0.8219 | 0.8311 | 0.7978 |
Figure 2Performance on the testing data set or different number of training epochs.
ADRs extracted from reviews for the drugs that treat depression.
| Group | Adverse drug reactions |
|---|---|
| All authors | Anxiety, depression, panic attacks, depressed, pain, weight gain, nausea, headaches, dizziness, insomnia, dizzy, mood swings, tired, dry mouth, sweating |
| Gender group “female” | Rash, gained weight, could not sleep, heartburn, severe nausea, lost weight, restless, very irritable, heart racing, disconnected, stiffness, upset, severe migraines, cramping, neck pain, twitching, fever, skin problems |
| Gender group “male” | Erectile dysfunction, pins and needles, burning sensations, loose bowels, urination, uneasiness, trouble with dizziness, severe drowsiness, night sweat, chest pressure, blisters, clammy hands |
| Age group “19–34” | Couldn't sleep, anger issues, loss of sex drive, cramps, unmotivated, jaw pain, frequent headaches, fever, stomach pains, crying for no reason, severe dizziness, intrusive thoughts |
| Age group “45–64” | Nervous breakdown, aches and pains, swelling, muscle aches, delayed ejaculation, profuse sweating, indigestion, ringing in my ears, spasms, trouble urinating, palpitations |
ADRs extracted from reviews for the drugs that treat high blood pressure.
| Group | Adverse drug reactions |
|---|---|
| All authors | Cough, coughing, dizziness, dizzy, headaches, dry cough, fatigue, tired, headache, weight gain, hair loss, nausea, anxiety, shortness of breath, tiredness, diarrhea, chest pain, depression, joint pain, rash, swelling, very tired, light headed, blurred vision |
| Gender group “female” | Heart palpitations, hives, gagging, hot flashes, extremely tired, nightmares, chronic cough, cold hands and feet, panic attacks, exhausted, weight loss, blurry vision, heartburn, sleepy, persistent cough, severe headaches, stomach pain, numbness |
| Age group “45–64” | Bloating, muscle aches, persistent cough, indigestion, stomach pain, post nasal drip, sick, lack of sleep, ringing in my ears, stomach pains, foot cramps, tightness in chest, falling out, severe coughing, faint, nagging cough, no energy |
| Age group “25–44” | Short-term memory loss, slight weight gain, fast heartbeat, lost sex drive, cramp, unusual tiredness, bad dreams, numbness in my toes, pain in my side, dazed feeling, intense salt cravings, lip to swell, chronic headaches, throat and neck swelled |
ADRs extracted from reviews for the drugs that treat fibromyalgia.
| Group | Adverse drug reactions |
|---|---|
| All authors | Pain, depression, anxiety, weight gain, nausea, headaches, depressed, dizziness, dizzy, panic attacks, nerve pain, insomnia, dry mouth, constipation, sweating, tired, headache, fatigue, back pain, mood swings, hot flashes, nightmares, suicidal thoughts, severe pain, blurred vision, muscle pain, vomiting, chronic pain, suicidal, neuropathic pain, drowsiness, trouble sleeping, sex drive, diarrhea, seizures, crying, anxious, nauseous, numbness, swelling, leg pain, night sweats, vertigo, tremors, joint pain, itching, burning, panic attack, sleepiness, drowsy |
| Gender group “female” | Severe migraines, water retention, severe panic attacks, suicidal ideation, exhaustion, stiff, inability to sleep, rapid heartbeat, crazy dreams, sweaty, nervous breakdown, extreme sweating, fogginess, flushing, major weight gain, increased my appetite |
| Gender group “male” | Blisters, premature ejaculation, foot neuropathy, burning discomfort, can barely walk, pain in my toes, anger problems, loss of libido, pancreatitis, pain in lower back, hiccups, shock sensations, couldn't walk, can't walk, panic problems, “shock” sensations, hangover, short-term memory, severe trouble urinating |