我正在尝试读取/写入一个巨大的文本文件。 但是当我尝试这样做时,我得到错误:
Exception in thread "main" java.lang.OutOfMemoryError: Java heap space
at java.util.Arrays.copyOf(Unknown Source)
at java.lang.AbstractStringBuilder.expandCapacity(Unknown Source)
at java.lang.AbstractStringBuilder.append(Unknown Source)
at java.lang.StringBuilder.append(Unknown Source)
at ReadWriteTextFile.getContents(ReadWriteTextFile.java:52)
at ReadWriteTextFile.main(ReadWriteTextFile.java:148)
我的代码如下:
import java.io.*;
import java.io.BufferedWriter;
import java.io.File;
import java.io.FileWriter;
import java.io.IOException;
public class ReadWriteTextFile {
/**
* Fetch the entire contents of a text file, and return it in a String.
* This style of implementation does not throw Exceptions to the caller.
*
* @param aFile is a file which already exists and can be read.
*/
static public String getContents(File aFile) {
//...checks on aFile are elided
StringBuilder contents = new StringBuilder();
int maxlines = 1000; //counts max lines t read/write to the file
BufferedReader input = null;
BufferedWriter bw = null;
try {
//use buffering, reading one line at a time
//FileReader always assumes default encoding is OK!
input = new BufferedReader(new FileReader(aFile));
try {
String line = null; //not declared within while loop
/*
* readLine is a bit quirky :
* it returns the content of a line MINUS the newline.
* it returns null only for the END of the stream.
* it returns an empty String if two newlines appear in a row.
*/
//for (int i = 0; i < 100; i++){
//int count = 0;//initiates the line counter
while (( line = input.readLine()) != null){
int count = 0;//initiates the line counter
String modified1 = line.substring(2,17);
String modified2 = line.substring(18,33);
String modified3 = line.substring(40);
String result = "empty";
result = modified1 + ",," +modified2 + modified3;
System.out.println (result);
// contents.append(line);
// contents.append(System.getProperty("line.separator"));
//int count = 0;//initiates the line counter
try {
contents.append(line);
contents.append(System.getProperty("line.separator"));
String content = result;
File file = new File("C:\\temp\\out.txt");//output path
// if file doesnt exists, then create it
if (!file.exists()) {
file.createNewFile();
}
for ( int i = 0; i < 1000; i++){
if (count++ % maxlines == 0) {
FileWriter fw = new FileWriter(file.getAbsoluteFile(),true);
bw = new BufferedWriter(fw);
bw.write(content);
bw.newLine();
}
bw.close();
}
} catch (IOException e) {
e.printStackTrace();
}
//}
}
}
finally {
input.close();
bw.close();
}
}
catch (IOException ex){
ex.printStackTrace();
}
return contents.toString();
}
/**
* Change the contents of text file in its entirety, overwriting any
* existing text.
*
* This style of implementation throws all exceptions to the caller.
*
* @param aFile is an existing file which can be written to.
* @throws IllegalArgumentException if param does not comply.
* @throws FileNotFoundException if the file does not exist.
* @throws IOException if problem encountered during write.
*/
static public void setContents(File aFile, String aContents)
throws FileNotFoundException, IOException {
if (aFile == null) {
throw new IllegalArgumentException("File should not be null.");
}
if (!aFile.exists()) {
throw new FileNotFoundException ("File does not exist: " + aFile);
}
if (!aFile.isFile()) {
throw new IllegalArgumentException("Should not be a directory: " + aFile);
}
if (!aFile.canWrite()) {
throw new IllegalArgumentException("File cannot be written: " + aFile);
}
//use buffering
Writer output = new BufferedWriter(new FileWriter(aFile, true));
try {
//FileWriter always assumes default encoding is OK!
output.write( aContents );
}
finally {
output.close();
}
}
/** Simple test harness. */
public static void main (String... aArguments) throws IOException {
File testFile = new File("C:\\temp\\in.txt");//input path
System.out.println("\n" + getContents(testFile));
}
}
我尝试添加一个计数器(count),以便在读取一定量的行后刷新缓冲区。它没用。 我知道计数器不能正常工作。在执行特殊数量的“while”循环后,它不会变为零。我在while循环之前和之后添加了一个“for”循环以清空计数器,但这样做也没有用。
有任何建议吗?
答案 0 :(得分:8)
尝试使用FileInputStream而不是BufferedReader / Writer。当我使用FileInputStream时,我可以复制一个超过3600万行的虚拟日志文件,并且在不到几秒的时间内就会有近500MB的大小。
FileInputStream in = new FileInputStream(from); //Read data from a file
FileOutputStream out = new FileOutputStream(to); //Write data to a file
byte[] buffer = new byte[4096]; //Buffer size, Usually 1024-4096
int len;
while ((len = in.read(buffer, 0, buffer.length)) > 0) {
out.write(buffer, 0, len);
}
//Close the FileStreams
in.close();
out.close();
如果你想逐行而不是字节块读取文件,你可以使用BufferedReader,但方式不同。
// Removed redundant exists()/createNewFile() calls altogether
String line;
BufferedReader br = new BufferedReader(new FileReader(aFile));
BufferedWriter output = new BufferedWriter(new FileWriter(file, true));
while ((line = br.readLine()) != null) {
String modified1 = line.substring(2,17);
String modified2 = line.substring(18,33);
String modified3 = line.substring(40);
String result = "empty";
result = modified1 + ",," +modified2 + modified3;
System.out.println (result);
output.append(result + "\n");//Use \r\n for Windows EOL
}
//Close Streams
br.close();
output.close();
在while ((line = br.readLine()) != null)期间,您应该执行在此处加载的整个文件所需的内容,同时只将1行加载到内存中。 (例如检查一行是否包含 _ 或从中抓取文字)。
您可以尝试避免OOM异常的另一件事是使用多个字符串。
if(contents.length() => (Integer.MAX_VALUE-5000)) { //-5000 to give some headway when checking
. . .
}
答案 1 :(得分:0)
不要尝试将大文件读入内存。他们不合适。找到一种方法,一次处理一行文件,一次处理一个记录,或一次处理一个块。我不明白为什么你不能这样做。
在构建同一File.exists()周围的File.createNewFile()之前立即致电FileWriter和File,这完全是浪费时间。
答案 2 :(得分:0)
我尝试添加一个计数器(count),以便在读取一定量的行后刷新缓冲区。它没用。我知道计数器不能正常工作。在执行特殊数量的“while”循环后,它不会变为零。我在while循环之前和之后添加了一个“for”循环以清空计数器,但这样做也没有用。
有任何建议吗?
内存不足错误是因为您的文件非常庞大,导致该文件的所有内容无法读入函数contents中的本地变量getContents(File aFile)。
刷新缓冲区与它无关。使用PrintWriter而不是BufferedWriter可能有助于清理代码。通过使用PrintWriter,您不必执行以下操作:
bw.write(content);
bw.newLine();
您可以将其更改为:
printWriter.println(content);
您也忘了告诉我们您的用例。最后,您所做的只是打印文件的所有内容。你可以逐行完成这个。
答案 3 :(得分:0)
要读取Java中的大文件,您应该使用java.util.scanner或apache commons LineIterator。 这两种方法都不会将整个文件加载到内存中并逐行读取文件。 能够使用LineIterator读取大小超过1GB的文件。 请访问此链接了解更多详情 http://www.baeldung.com/java-read-lines-large-file和示例。