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A freelance Computer Engineer, with experience mainly on C, Java and all things Un*x...


20h
comment Install and run application as service on Windows linux and MAC
Install4J does have support for service deployment, IIRC, but it should be pointed out that it is a commercial offering with a price...
20h
comment Install and run application as service on Windows linux and MAC
I would argue that this is in fact at least three questions in one. Windows and Linux have very different approaches to service management - I would expect OS X to differ as well...
2d
comment There is no “may be used uninitialized” when optimization is disabled
@Surt: I think that all GCC versions behave the same way. Most of GCC, including the inline assembler, is disabled at -O0. -O0 is marginally useful for debugging, but that's all.
2d
comment There is no “may be used uninitialized” when optimization is disabled
IIRC the unused code warnings are generated by the GCC branch/code elimination pass. Since no such pass is performed at -O0, no unused code warnings appear. Why do you insist on using -O0, anyway?
Sep
11
awarded  Necromancer
Sep
10
awarded  Enlightened
Sep
10
awarded  Nice Answer
Sep
10
comment is there a way to convert Number word to integers? java
1. Why do you need to do that? 2. Do you need floating point numbers as well? 3. What is a "billion" to you?
Sep
9
revised How can i securely access a web based MYSQL database from an Android App
added 339 characters in body
Sep
9
answered How can i securely access a web based MYSQL database from an Android App
Sep
9
comment How can i securely access a web based MYSQL database from an Android App
That's impossible - if your application can access the data, then any sufficiently determined and knowledgeable user will be able to do the same.
Sep
9
comment How can i securely access a web based MYSQL database from an Android App
A publicly accessible DB? That sounds like a disaster in the making. You should create a proper web service and let each user have their own username and password, with access only to their own data.
Sep
9
comment How to overwrite the hashcode method that returns a unique hashcode value with its unique entity ID in my defined Java object?
@BradyChu: well, in that case it does not matter :-) But if you are wondering, a little JMH benchmark shows that the valueOf() approach is about 3 times slower than the Long.hashCode(long) static method on Java 8. Depending on the application, that might actually be important...
Sep
9
comment How to overwrite the hashcode method that returns a unique hashcode value with its unique entity ID in my defined Java object?
There may be a slight performance issue with this approach - valueOf() typically creates a new object. The JVM will probably create it on the stack, but I am not sure if it is smart enough to avoid creating it entrirely.
Sep
9
answered How to overwrite the hashcode method that returns a unique hashcode value with its unique entity ID in my defined Java object?
Sep
6
comment Java: fastest way to serialize to a byte buffer
What is the target medium for your serialized data? Serializing to a byte buffer is not very useful on its own. Unless you are doing something really interesting such as RDMA, serializing to most targets (network, disk etc) is I/O-bound. And if you are just doing IPC locally, I'd first look in the possibility of refactoring my application to avoid serialization/deserialization completely. Can you provide some details on what you are doing, and what necessitates such performance concerns?
Sep
6
comment Java: fastest way to serialize to a byte buffer
Any particular reason for not using an existing serialization library, such as Kryo?
Sep
6
comment How much memory is allocated in Java when initializing a Object array?
Why is it 5 bytes? The actual address has been shifted rightwards by 3-bits, so the first byte of those five is zero by definition. There is no need to store it...
Sep
6
comment How much memory is allocated in Java when initializing a Object array?
@eldjon: Object addresses within an 64-bit JVM are alligned at 8-byte boundaries. Therefore each 64-bit address has zero on the three least significant bits. By shifting all addresses rightwards by three bits before storing the reference, you can address 2 ^ (32 + 3) B = 32 GB with only 4-bytes. I assume that the lower actual limit is due to techical reasons...
Sep
6
comment How much memory is allocated in Java when initializing a Object array?
Uh, not exactly... Modern JVMs use compressed pointers (i.e. 4 bytes) when the heap size is less than ~28GB...