--- parser3/src/include/pa_array.h 2001/01/29 15:56:03 1.7 +++ parser3/src/include/pa_array.h 2024/09/11 21:07:36 1.91 @@ -1,97 +1,373 @@ -/* - $Id: pa_array.h,v 1.7 2001/01/29 15:56:03 paf Exp $ -*/ - -/* - - Array Chunk0 - ====== ======== - head--------------->[ptr] - append_here-------->[ptr] - link_row ........ - . . - . [ptr] - ...........>[link to the next chunk] +/** @file + Parser: Array & Array_iterator classes decls. + Copyright (c) 2001-2023 Art. Lebedev Studio (http://www.artlebedev.com) + Authors: Konstantin Morshnev , Alexandr Petrosian */ #ifndef PA_ARRAY_H #define PA_ARRAY_H -#include +#define IDENT_PA_ARRAY_H "$Id: pa_array.h,v 1.91 2024/09/11 21:07:36 moko Exp $" +// includes + +#include "pa_memory.h" #include "pa_types.h" +#include "pa_exception.h" + +// forwards + +template class Array_iterator; +template class Array_reverse_iterator; + +// defines + +#define ARRAY_OPTION_LIMIT_ALL ((size_t)-1) + +/// Simple Array +template class Array: public PA_Object { + + friend class Array_iterator; + friend class Array_reverse_iterator; + +protected: -class Pool; + /// elements[growing size] here + T *felements; + + // allocated size + size_t fallocated; + + // array size + size_t fused; -class Array { public: + typedef Array_iterator Iterator; + typedef Array_reverse_iterator ReverseIterator; - typedef void *Item; + struct Action_options { + size_t offset; + size_t limit; //< ARRAY_OPTION_LIMIT_ALL means 'all'. zero limit means 'nothing' + bool reverse; + bool defined; + + Action_options( + size_t aoffset=0, + size_t alimit=ARRAY_OPTION_LIMIT_ALL, + bool areverse=false): + offset(aoffset), limit(alimit), reverse(areverse), + defined(false) {} + + bool adjust(size_t count) { + if(!count || !limit) + return false; + if(offset>=count) + return false; + // max(limit) + size_t m=reverse? + offset+1 + :count-offset; + if(!m) + return false; + // fix limit + if(limit==ARRAY_OPTION_LIMIT_ALL || limit>m) + limit=m; - enum { - CR_INITIAL_ROWS_DEFAULT=10, - CR_GROW_PERCENT=60 + return true; + } + + }; -public: + typedef T element_type; - void *operator new(size_t size, Pool *apool); - Array(Pool *apool, int initial_rows=CR_INITIAL_ROWS_DEFAULT); + inline Array(size_t initial=0): + fallocated(initial), + fused(0) + { + felements=fallocated?(T *)pa_malloc(fallocated*sizeof(T)):0; + } - int size() { return fused_rows; } - Array& operator += (Item src); - Array& operator += (Array& src); - Item& operator [] (int index); +#ifdef USE_DESTRUCTORS + inline ~Array(){ + if(felements) + pa_free(felements); + } +#endif -protected: + /// how many items are in Array + inline size_t count() const { return fused; } + /// append to array + inline Array& operator+=(T src) { + if(is_full()) + expand(fallocated>0? 2+fallocated/32 : 3); // 3 is PAF default, confirmed by tests - // the pool I'm allocated on - Pool *pool; + felements[fused++]=src; -private: + return *this; + } - struct Chunk { - // the number of rows in chunk - int count; - union Row { - Item item; - Chunk *link; // link to the next chunk in chain - } rows[1]; - // next rows are here - } - *head; // the head chunk of the chunk chain - - // last allocated chunk - // helps appending Arrays - Chunk *tail; - - // next append would write to this record - Chunk::Row *append_here; - - // the address of place where lies address - // of the link to the next chunk to allocate - Chunk::Row *link_row; + /// append other Array portion to this one. starting from offset + Array& append(const Array& src, + size_t offset=0, + size_t limit=ARRAY_OPTION_LIMIT_ALL) { //< negative limit means 'all'. zero limit means 'nothing' + + size_t src_count=src.count(); + // skip tivials + if(!src_count || !limit || offset>=src_count) + return *this; + // max(limit) + size_t m=src_count-offset; + // fix limit + if(limit==ARRAY_OPTION_LIMIT_ALL || limit>m) + limit=m; + + ssize_t delta=limit-(fallocated-fused); + if(delta>0) + expand(delta); + + T* from=&src.felements[offset]; + T* to=&felements[fused]; + for(T* from_end=from+limit; from0? 2+fallocated/32 : 3); // 3 is PAF default, confirmed by tests + + memmove(felements+index+1, felements+index, (fused-index) * sizeof(T)); + + felements[index]=element; + fused++; + } + + /// remove index-element + inline void remove(size_t index) { + assert(index void for_each(void (*callback)(T, I), I info) const { + T *last=felements+fused; + for(T *current=felements; current void for_each(bool (*callback)(T, I), I info) const { + T *last=felements+fused; + for(T *current=felements; current void for_each_ref(void (*callback)(T&, I), I info) { + T *last=felements+fused; + for(T *current=felements; current T first_that(bool (*callback)(T, I), I info) const { + T *last=felements+fused; + for(T *current=felements; current= fallocated){ + size_t new_allocated=fallocated>0 ? fallocated : 3; + while(new_allocated <= index){ + new_allocated+=2 + new_allocated/32; + } + expand(new_allocated - fallocated); + } + felements[index]=element; + if(index >= fused){ + fused=index+1; + } + } + +protected: + + bool is_full() { + return fused == fallocated; + } - bool chunk_is_full() { - return append_here == link_row; + void expand(size_t delta) { + if(fallocated){ + size_t new_allocated=fallocated+delta; + felements=(T *)pa_realloc(felements, new_allocated*sizeof(T)); + fallocated=new_allocated; + } else { + fallocated=delta; + felements=(T *)pa_malloc(fallocated*sizeof(T)); + } } - void expand(int chunk_rows); private: //disabled - Array(Array&) {} - Array& operator = (Array&) { return *this; } + Array(const Array&) {} + Array& operator = (const Array&) { return *this; } }; +/// Commonly used, templated to work with any integer type + +template char* pa_itoa(T n, T base=10){ + char buf[MAX_NUMBER + 1]; + char* pos=buf + MAX_NUMBER; + *pos='\0'; + + bool negative=n < 0; + if (n < 0){ + n=-n; + } + + do { + *(--pos)=(n % base) + '0'; + n/=base; + } while (n > 0); + + if (negative) { + *(--pos) = '-'; + } + return pa_strdup(pos, buf + MAX_NUMBER - pos); +} + +template char* pa_uitoa(T n, T base=10){ + char buf[MAX_NUMBER + 1]; + char* pos=buf + MAX_NUMBER; + *pos='\0'; + + do { + *(--pos)=(n % base) + '0'; + n/=base; + } while (n > 0); + + return pa_strdup(pos, buf + MAX_NUMBER - pos); +} + + +/** Array iterator, usage: + @code + // Array a; + for(Array_iterator i(a); i; ) { + T& element=i.next(); + ... + } + @endcode +*/ +template class Array_iterator { + + const Array& farray; + T *fcurrent; + T *flast; + +public: + + Array_iterator(const Array& aarray): farray(aarray) { + fcurrent=farray.felements; + flast=farray.felements + farray.count(); + } + + /// there are still elements + inline operator bool () { + return fcurrent < flast; + } + + /// returns the current element and advances the iterator + inline T next() { + return *(fcurrent++); + } + + /// returns the current element + inline T value() { + return *(fcurrent); + } + + // returns the current index of the iterator + inline size_t index() { + return fcurrent - farray.felements; + } + + inline char *key(){ + return pa_uitoa(index()); + } + +}; + +template class Array_reverse_iterator { + + const Array& farray; + T *fcurrent; + +public: + + Array_reverse_iterator(const Array& aarray): farray(aarray) { + fcurrent=farray.felements+farray.count(); + } + + /// there are still elements + inline operator bool () { + return fcurrent > farray.felements; + } + + /// returns the current element and advances the iterator + inline T prev() { + return *(--fcurrent); + } + + // returns the current index of the iterator + inline size_t index() { + return fcurrent - farray.felements; + } + + inline char *key(){ + return pa_uitoa(index()); + } + +}; #endif