Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have large text strings with 10-digit unix date stamps sprinkled throughout. I am trying to write a query to search through the text string for these 10-digit number and replace them with a regular date format. I have the convert statement as:

TRUNC(DATE '1970-01-01' + [timestamp]/86400), which works perfectly when I input a value.

Example: select TRUNC(DATE '1970-01-01' + 1022089483/86400) from dual; = 22-may-02

But I am having a bad time finding the appropriate way to find and replace. Also, I cannot use regular expressions. So, here's my theoretical SQL:

replace([column],'[sql to find 10-digit number]'
          ,TRUNC(DATE '1970-01-01' + [10-digit number]/86400))

Here is some sample text:

1022089483 blah blah blah blah blah 1022094450 blah blah blah blah blah blah 1022095218 blah blah blah blah

share|improve this question
    
It's not clear what do you want to replace. Can you show an expected input and output ? –  alfasin Aug 9 '12 at 20:12
1  
Why can you not use regular expressions? This is precisely what they are designed for. –  Ben Aug 9 '12 at 20:50
    
alfasin - I want to replace the numbers with their corresponding dates. –  user1588433 Aug 10 '12 at 3:33
    
Ben - our database cannot handle regular expressions. believe me, if I could use them I would. –  user1588433 Aug 10 '12 at 3:34
    
Why not? Are you still using Oracle 9i or older? –  Frank Schmitt Aug 10 '12 at 10:50

1 Answer 1

up vote 2 down vote accepted

Just for fun, thought I'd try this the hard way. One function to find the start of a 10-digit number using instr, then one that calls that repeatedly and replaces any that are found with formatted dates. Not at all sure this is a sensible approach, or in any way efficient...

create or replace function epoch_offset(p_value in varchar2, p_start number)
return number is
    l_value varchar2(4000);
    offset number := 0;
    prev_offset number := 0;
    digit_count number := 0;
    epoch_start number := 0;
    pos number := p_start;
begin
    -- replace all digits with a single one, to make searching with instr
    -- simpler
    l_value := translate(p_value, '1234567890', '9999999999');

    while true loop
        -- find the next digit, starting as pos; first time through, pos
        -- will be the p_start we were given, then it tracks where we have
        -- got to
        offset := instr(l_value, '9', pos);

        if offset = 0 then
            -- we didn't find a digit, check if we already had a 10-digit
            -- number and have just reached the end
            if digit_count = 10 then -- and pos > length(p_value) then
                -- original value ends with a timestamp; so we have a 10-digit
                -- number
                exit;
            else
                -- no more digits, and last set we saw was short than 10; so
                -- l_value does not contain any 10-digit numbers (at least,
                -- after p_start)
                epoch_start := 0;
                exit;
            end if;
        end if;

        if prev_offset > 0 and offset != prev_offset + 1 then
            -- we've found a digit, but there's a gap since the last one
            if digit_count = 10 then
                -- the gap denotes the end of a 10-digit number, which is
                -- what we're looking for
                exit;
            end if;

            -- we've potentially started a new 10-digit number, so reset
            epoch_start := offset;
            digit_count := 0;
            prev_offset := 0;
        else
            -- we've found a sequential digit
            prev_offset := offset;
        end if;

        -- mark where we are
        if digit_count = 0 then
            -- start of a potential digit-sequence, make a note
            epoch_start := offset;
        end if;
        digit_count := digit_count + 1;
        pos := offset + 1;
    end loop;

    return epoch_start;
end epoch_offset;
/

create or replace function epoch_replace(p_value in varchar2,
    p_start in number default 1)
return varchar2 as
    l_pos number;
    l_time number;
    l_value varchar2(4000);
begin
    -- for this iteration, find the start of a 10-digit number, starting
    -- from p_start (1 on first iteration, by default)
    l_pos := epoch_offset(p_value, p_start);
    if l_pos > 0 then
        -- found a 10-digit number; call this recursively before modifying -
        -- this means we'll replace numbers with dates working from the end,
        -- so the positions don't need to be adjusted for the difference
        -- between the number and date lengths
        l_value := epoch_replace(p_value, l_pos + 10);
        -- get the 10-digit number...
        l_time := to_number(substr(l_value, l_pos, 10));
        -- ... and convert it to a date, with the rest of the original value
        -- around it
        return substr(l_value, 1, l_pos - 1)
            || to_char(trunc(DATE '1970-01-01' + l_time/86400), 'DD-mon-RR')
            || substr(l_value, l_pos + 10);
    else
        -- didn't find a 10-digit number, so return what we started with
        return p_value;
    end if;
end epoch_replace;
/

There may be other edge cases it trips over, but attmped it with a few obvious ones:

with tmp_tab as (
    select '1022089483 blah blah blah blah blah 1022094450 blah blah blah blah blah blah 1022095218 blah blah blah blah' as value from dual
    union all
    select 'blah 1022089483 blah 1022094450' from dual
    union all
    select 'blah 1022089483 98765 1022094450 1234' from dual
    union all
    select 'blah 1022089483 98765 1022094450 1022095218 1234 123456789 12345678901 123' from dual
)
select epoch_replace(value) from tmp_tab;

EPOCH_REPLACE(VALUE)
------------------------------------------------------------------------------------------------------------------------
22-may-02 blah blah blah blah blah 22-may-02 blah blah blah blah blah blah 22-may-02 blah blah blah blah
blah 22-may-02 blah 22-may-02
blah 22-may-02 98765 22-may-02 1234
blah 22-may-02 98765 22-may-02 22-may-02 1234 123456789 12345678901 123
share|improve this answer
    
I was going to try this yesterday but ran out of time :-). –  Ben Aug 11 '12 at 10:00
    
Thanks for the suggestions everyone. –  user1588433 Aug 14 '12 at 18:15

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.