#include "libpspp/misc.h"
#include "libpspp/str.h"
#include "math/moments.h"
-#include "output/tab.h"
-#include "output/text-item.h"
+#include "output/pivot-table.h"
+#include "output/output-item.h"
#include "gettext.h"
#define _(msgid) gettext (msgid)
#define N_(msgid) msgid
struct cronbach
-{
- const struct variable **items;
- size_t n_items;
- double alpha;
- double sum_of_variances;
- double variance_of_sums;
- int totals_idx; /* Casereader index into the totals */
-
- struct moments1 **m ; /* Moments of the items */
- struct moments1 *total ; /* Moments of the totals */
-};
+ {
+ const struct variable **items;
+ size_t n_items;
+ double alpha;
+ double sum_of_variances;
+ double variance_of_sums;
+ int totals_idx; /* Casereader index into the totals */
+
+ struct moments1 **m; /* Moments of the items */
+ struct moments1 *total; /* Moments of the totals */
+ };
#if 0
static void
{
int i;
printf ("N items %d\n", s->n_items);
- for (i = 0 ; i < s->n_items; ++i)
+ for (i = 0; i < s->n_items; ++i)
{
printf ("%s\n", var_get_name (s->items[i]));
}
};
-enum summary_opts
- {
- SUMMARY_TOTAL = 0x0001,
- };
-
-
struct reliability
{
- const struct variable **variables;
- size_t n_variables;
+ const struct variable **vars;
+ size_t n_vars;
enum mv_class exclude;
struct cronbach *sc;
int total_start;
- struct string scale_name;
+ char *scale_name;
enum model model;
int split_point;
-
- enum summary_opts summary;
+ bool summary_total;
const struct variable *wv;
};
reliability_destroy (struct reliability *rel)
{
int j;
- ds_destroy (&rel->scale_name);
+ free (rel->scale_name);
if (rel->sc)
- for (j = 0; j < rel->n_sc ; ++j)
+ for (j = 0; j < rel->n_sc; ++j)
{
int x;
free (rel->sc[j].items);
}
free (rel->sc);
- free (rel->variables);
+ free (rel->vars);
}
int
{
const struct dictionary *dict = dataset_dict (ds);
- struct reliability reliability;
- reliability.n_variables = 0;
- reliability.variables = NULL;
- reliability.model = MODEL_ALPHA;
- reliability.exclude = MV_ANY;
- reliability.summary = 0;
- reliability.n_sc = 0;
- reliability.sc = NULL;
- reliability.wv = dict_get_weight (dict);
- reliability.total_start = 0;
- ds_init_empty (&reliability.scale_name);
-
+ struct reliability r = {
+ .model = MODEL_ALPHA,
+ .exclude = MV_ANY,
+ .wv = dict_get_weight (dict),
+ .scale_name = xstrdup ("ANY"),
+ };
lex_match (lexer, T_SLASH);
if (!lex_force_match_id (lexer, "VARIABLES"))
- {
- goto error;
- }
+ goto error;
lex_match (lexer, T_EQUALS);
- if (!parse_variables_const (lexer, dict, &reliability.variables, &reliability.n_variables,
+ int vars_start = lex_ofs (lexer);
+ if (!parse_variables_const (lexer, dict, &r.vars, &r.n_vars,
PV_NO_DUPLICATE | PV_NUMERIC))
goto error;
+ int vars_end = lex_ofs (lexer) - 1;
- if (reliability.n_variables < 2)
- msg (MW, _("Reliability on a single variable is not useful."));
-
-
- {
- int i;
- struct cronbach *c;
- /* Create a default Scale */
-
- reliability.n_sc = 1;
- reliability.sc = xzalloc (sizeof (struct cronbach) * reliability.n_sc);
-
- ds_assign_cstr (&reliability.scale_name, "ANY");
-
- c = &reliability.sc[0];
- c->n_items = reliability.n_variables;
- c->items = xzalloc (sizeof (struct variable*) * c->n_items);
-
- for (i = 0 ; i < c->n_items ; ++i)
- c->items[i] = reliability.variables[i];
- }
+ if (r.n_vars < 2)
+ lex_ofs_msg (lexer, SW, vars_start, vars_end,
+ _("Reliability on a single variable is not useful."));
+ /* Create a default scale. */
+ r.n_sc = 1;
+ r.sc = xcalloc (r.n_sc, sizeof (struct cronbach));
+ struct cronbach *c = &r.sc[0];
+ c->n_items = r.n_vars;
+ c->items = xcalloc (c->n_items, sizeof (struct variable*));
+ for (size_t i = 0; i < c->n_items; ++i)
+ c->items[i] = r.vars[i];
+ int split_ofs = 0;
while (lex_token (lexer) != T_ENDCMD)
{
lex_match (lexer, T_SLASH);
if (lex_match_id (lexer, "SCALE"))
{
struct const_var_set *vs;
- if ( ! lex_force_match (lexer, T_LPAREN))
+ if (!lex_force_match (lexer, T_LPAREN))
goto error;
- if ( ! lex_force_string (lexer) )
+ if (!lex_force_string (lexer))
goto error;
-
- ds_assign_substring (&reliability.scale_name, lex_tokss (lexer));
-
+ free (r.scale_name);
+ r.scale_name = xstrdup (lex_tokcstr (lexer));
lex_get (lexer);
- if ( ! lex_force_match (lexer, T_RPAREN))
+ if (!lex_force_match (lexer, T_RPAREN))
goto error;
lex_match (lexer, T_EQUALS);
- vs = const_var_set_create_from_array (reliability.variables, reliability.n_variables);
+ vs = const_var_set_create_from_array (r.vars, r.n_vars);
- free (reliability.sc->items);
- if (!parse_const_var_set_vars (lexer, vs, &reliability.sc->items, &reliability.sc->n_items, 0))
+ free (r.sc->items);
+ if (!parse_const_var_set_vars (lexer, vs, &r.sc->items, &r.sc->n_items, 0))
{
const_var_set_destroy (vs);
goto error;
{
lex_match (lexer, T_EQUALS);
if (lex_match_id (lexer, "ALPHA"))
- {
- reliability.model = MODEL_ALPHA;
- }
+ r.model = MODEL_ALPHA;
else if (lex_match_id (lexer, "SPLIT"))
{
- reliability.model = MODEL_SPLIT;
- reliability.split_point = -1;
-
- if ( lex_match (lexer, T_LPAREN)
- && lex_force_num (lexer))
- {
- reliability.split_point = lex_number (lexer);
+ r.model = MODEL_SPLIT;
+ r.split_point = -1;
+
+ if (lex_match (lexer, T_LPAREN))
+ {
+ if (!lex_force_num (lexer))
+ goto error;
+ split_ofs = lex_ofs (lexer);
+ r.split_point = lex_number (lexer);
lex_get (lexer);
- if (! lex_force_match (lexer, T_RPAREN))
+ if (!lex_force_match (lexer, T_RPAREN))
goto error;
}
}
else
- goto error;
+ {
+ lex_error_expecting (lexer, "ALPHA", "SPLIT");
+ goto error;
+ }
}
else if (lex_match_id (lexer, "SUMMARY"))
{
lex_match (lexer, T_EQUALS);
- if (lex_match_id (lexer, "TOTAL"))
- {
- reliability.summary |= SUMMARY_TOTAL;
- }
- else if (lex_match (lexer, T_ALL))
- {
- reliability.summary = 0xFFFF;
- }
+ if (lex_match_id (lexer, "TOTAL") || lex_match (lexer, T_ALL))
+ r.summary_total = true;
else
- goto error;
+ {
+ lex_error_expecting (lexer, "TOTAL", "ALL");
+ goto error;
+ }
}
else if (lex_match_id (lexer, "MISSING"))
{
while (lex_token (lexer) != T_ENDCMD && lex_token (lexer) != T_SLASH)
{
if (lex_match_id (lexer, "INCLUDE"))
+ r.exclude = MV_SYSTEM;
+ else if (lex_match_id (lexer, "EXCLUDE"))
+ r.exclude = MV_ANY;
+ else
{
- reliability.exclude = MV_SYSTEM;
- }
- else if (lex_match_id (lexer, "EXCLUDE"))
- {
- reliability.exclude = MV_ANY;
- }
- else
- {
- lex_error (lexer, NULL);
+ lex_error_expecting (lexer, "INCLUDE", "EXCLUDE");
goto error;
}
}
}
else if (lex_match_id (lexer, "STATISTICS"))
{
+ int statistics_start = lex_ofs (lexer) - 1;
lex_match (lexer, T_EQUALS);
- msg (SW, _("The STATISTICS subcommand is not yet implemented. "
- "No statistics will be produced."));
while (lex_match (lexer, T_ID))
continue;
+ int statistics_end = lex_ofs (lexer) - 1;
+
+ lex_ofs_msg (lexer, SW, statistics_start, statistics_end,
+ _("The STATISTICS subcommand is not yet implemented. "
+ "No statistics will be produced."));
}
else
{
- lex_error (lexer, NULL);
+ lex_error_expecting (lexer, "SCALE", "MODEL", "SUMMARY", "MISSING",
+ "STATISTICS");
goto error;
}
}
- if ( reliability.model == MODEL_SPLIT)
+ if (r.model == MODEL_SPLIT)
{
- int i;
- const struct cronbach *s;
-
- if ( reliability.split_point >= reliability.n_variables)
+ if (r.split_point >= r.n_vars)
{
- msg (ME, _("The split point must be less than the number of variables"));
+ lex_ofs_error (lexer, split_ofs, split_ofs,
+ _("The split point must be less than the "
+ "number of variables."));
+ lex_ofs_msg (lexer, SN, vars_start, vars_end,
+ ngettext ("There is %zu variable.",
+ "There are %zu variables.", r.n_vars),
+ r.n_vars);
goto error;
}
- reliability.n_sc += 2 ;
- reliability.sc = xrealloc (reliability.sc, sizeof (struct cronbach) * reliability.n_sc);
+ r.n_sc += 2;
+ r.sc = xrealloc (r.sc, sizeof (struct cronbach) * r.n_sc);
- s = &reliability.sc[0];
+ const struct cronbach *s = &r.sc[0];
- reliability.sc[1].n_items =
- (reliability.split_point == -1) ? s->n_items / 2 : reliability.split_point;
+ r.sc[1].n_items = r.split_point == -1 ? s->n_items / 2 : r.split_point;
- reliability.sc[2].n_items = s->n_items - reliability.sc[1].n_items;
- reliability.sc[1].items = xzalloc (sizeof (struct variable *)
- * reliability.sc[1].n_items);
-
- reliability.sc[2].items = xzalloc (sizeof (struct variable *) *
- reliability.sc[2].n_items);
-
- for (i = 0; i < reliability.sc[1].n_items ; ++i)
- reliability.sc[1].items[i] = s->items[i];
+ r.sc[2].n_items = s->n_items - r.sc[1].n_items;
+ r.sc[1].items = XCALLOC (r.sc[1].n_items, const struct variable *);
+ r.sc[2].items = XCALLOC (r.sc[2].n_items, const struct variable *);
+ size_t i = 0;
+ while (i < r.sc[1].n_items)
+ {
+ r.sc[1].items[i] = s->items[i];
+ i++;
+ }
while (i < s->n_items)
{
- reliability.sc[2].items[i - reliability.sc[1].n_items] = s->items[i];
+ r.sc[2].items[i - r.sc[1].n_items] = s->items[i];
i++;
}
}
- if ( reliability.summary & SUMMARY_TOTAL)
+ if (r.summary_total)
{
- int i;
- const int base_sc = reliability.n_sc;
-
- reliability.total_start = base_sc;
+ const int base_sc = r.n_sc;
- reliability.n_sc += reliability.sc[0].n_items ;
- reliability.sc = xrealloc (reliability.sc, sizeof (struct cronbach) * reliability.n_sc);
+ r.total_start = base_sc;
+ r.n_sc += r.sc[0].n_items;
+ r.sc = xrealloc (r.sc, sizeof (struct cronbach) * r.n_sc);
- for (i = 0 ; i < reliability.sc[0].n_items; ++i )
+ for (size_t i = 0; i < r.sc[0].n_items; ++i)
{
- int v_src;
- int v_dest = 0;
- struct cronbach *s = &reliability.sc[i + base_sc];
+ struct cronbach *s = &r.sc[i + base_sc];
- s->n_items = reliability.sc[0].n_items - 1;
- s->items = xzalloc (sizeof (struct variable *) * s->n_items);
- for (v_src = 0 ; v_src < reliability.sc[0].n_items ; ++v_src)
- {
- if ( v_src != i)
- s->items[v_dest++] = reliability.sc[0].items[v_src];
- }
+ s->n_items = r.sc[0].n_items - 1;
+ s->items = xcalloc (s->n_items, sizeof (struct variable *));
+
+ size_t v_dest = 0;
+ for (size_t v_src = 0; v_src < r.sc[0].n_items; ++v_src)
+ if (v_src != i)
+ s->items[v_dest++] = r.sc[0].items[v_src];
}
}
-
- if ( ! run_reliability (ds, &reliability))
+ if (!run_reliability (ds, &r))
goto error;
- reliability_destroy (&reliability);
+ reliability_destroy (&r);
return CMD_SUCCESS;
error:
- reliability_destroy (&reliability);
+ reliability_destroy (&r);
return CMD_FAILURE;
}
static bool
run_reliability (struct dataset *ds, const struct reliability *reliability)
{
- struct dictionary *dict = dataset_dict (ds);
- bool ok;
- struct casereader *group;
-
- struct casegrouper *grouper = casegrouper_create_splits (proc_open (ds), dict);
- int si;
-
- for (si = 0 ; si < reliability->n_sc; ++si)
+ for (size_t si = 0; si < reliability->n_sc; ++si)
{
struct cronbach *s = &reliability->sc[si];
- int i;
- s->m = xzalloc (sizeof *s->m * s->n_items);
+ s->m = xcalloc (s->n_items, sizeof *s->m);
s->total = moments1_create (MOMENT_VARIANCE);
- for (i = 0 ; i < s->n_items ; ++i )
+ for (size_t i = 0; i < s->n_items; ++i)
s->m[i] = moments1_create (MOMENT_VARIANCE);
}
-
+ struct dictionary *dict = dataset_dict (ds);
+ struct casegrouper *grouper = casegrouper_create_splits (proc_open (ds), dict);
+ struct casereader *group;
while (casegrouper_get_next_group (grouper, &group))
{
do_reliability (group, ds, reliability);
reliability_statistics (reliability);
- if (reliability->summary & SUMMARY_TOTAL )
+ if (reliability->summary_total)
reliability_summary_total (reliability);
}
- ok = casegrouper_destroy (grouper);
+ bool ok = casegrouper_destroy (grouper);
ok = proc_commit (ds) && ok;
-
return ok;
}
-
-
\f
-
-
/* Return the sum of all the item variables in S */
-static double
+static double
append_sum (const struct ccase *c, casenumber n UNUSED, void *aux)
{
double sum = 0;
const struct cronbach *s = aux;
- int v;
- for (v = 0 ; v < s->n_items; ++v)
- {
- sum += case_data (c, s->items[v])->f;
- }
+ for (int v = 0; v < s->n_items; ++v)
+ sum += case_num (c, s->items[v]);
return sum;
-};
+}
static void
case_processing_summary (casenumber n_valid, casenumber n_missing,
- const struct dictionary *dict);
-
+ const struct dictionary *);
static double
alpha (int k, double sum_of_variances, double variance_of_sums)
{
- return k / ( k - 1.0) * ( 1 - sum_of_variances / variance_of_sums);
+ return k / (k - 1.0) * (1 - sum_of_variances / variance_of_sums);
}
static void
do_reliability (struct casereader *input, struct dataset *ds,
const struct reliability *rel)
{
- int i;
- int si;
- struct ccase *c;
- casenumber n_missing ;
- casenumber n_valid = 0;
-
-
- for (si = 0 ; si < rel->n_sc; ++si)
+ for (size_t si = 0; si < rel->n_sc; ++si)
{
struct cronbach *s = &rel->sc[si];
moments1_clear (s->total);
-
- for (i = 0 ; i < s->n_items ; ++i )
+ for (size_t i = 0; i < s->n_items; ++i)
moments1_clear (s->m[i]);
}
+ casenumber n_missing;
input = casereader_create_filter_missing (input,
- rel->variables,
- rel->n_variables,
+ rel->vars,
+ rel->n_vars,
rel->exclude,
&n_missing,
NULL);
- for (si = 0 ; si < rel->n_sc; ++si)
+ for (size_t si = 0; si < rel->n_sc; ++si)
{
struct cronbach *s = &rel->sc[si];
-
-
s->totals_idx = caseproto_get_n_widths (casereader_get_proto (input));
- input =
- casereader_create_append_numeric (input, append_sum,
- s, NULL);
+ input = casereader_create_append_numeric (input, append_sum, s, NULL);
}
+ struct ccase *c;
+ casenumber n_valid = 0;
for (; (c = casereader_read (input)) != NULL; case_unref (c))
{
double weight = 1.0;
- n_valid ++;
+ n_valid++;
- for (si = 0; si < rel->n_sc; ++si)
+ for (size_t si = 0; si < rel->n_sc; ++si)
{
struct cronbach *s = &rel->sc[si];
- for (i = 0 ; i < s->n_items ; ++i )
- moments1_add (s->m[i], case_data (c, s->items[i])->f, weight);
-
- moments1_add (s->total, case_data_idx (c, s->totals_idx)->f, weight);
+ for (size_t i = 0; i < s->n_items; ++i)
+ moments1_add (s->m[i], case_num (c, s->items[i]), weight);
+ moments1_add (s->total, case_num_idx (c, s->totals_idx), weight);
}
}
casereader_destroy (input);
- for (si = 0; si < rel->n_sc; ++si)
+ for (size_t si = 0; si < rel->n_sc; ++si)
{
struct cronbach *s = &rel->sc[si];
s->sum_of_variances = 0;
- for (i = 0 ; i < s->n_items ; ++i )
+ for (size_t i = 0; i < s->n_items; ++i)
{
double weight, mean, variance;
moments1_calculate (s->m[i], &weight, &mean, &variance, NULL, NULL);
moments1_calculate (s->total, NULL, NULL, &s->variance_of_sums,
NULL, NULL);
- s->alpha =
- alpha (s->n_items, s->sum_of_variances, s->variance_of_sums);
+ s->alpha = alpha (s->n_items, s->sum_of_variances, s->variance_of_sums);
}
- text_item_submit (text_item_create_format (TEXT_ITEM_PARAGRAPH, _("Scale: %s"),
- ds_cstr (&rel->scale_name)));
+ output_item_submit (text_item_create_nocopy (
+ TEXT_ITEM_TITLE,
+ xasprintf (_("Scale: %s"), rel->scale_name),
+ NULL));
case_processing_summary (n_valid, n_missing, dataset_dict (ds));
}
-
-
-
-
static void
case_processing_summary (casenumber n_valid, casenumber n_missing,
const struct dictionary *dict)
{
- const struct variable *wv = dict_get_weight (dict);
- const struct fmt_spec *wfmt = wv ? var_get_print_format (wv) : & F_8_0;
-
- casenumber total;
- int n_cols = 4;
- int n_rows = 4;
- int heading_columns = 2;
- int heading_rows = 1;
- struct tab_table *tbl;
- tbl = tab_create (n_cols, n_rows);
- tab_set_format (tbl, RC_WEIGHT, wfmt);
- tab_headers (tbl, heading_columns, 0, heading_rows, 0);
-
- tab_title (tbl, _("Case Processing Summary"));
-
- /* Vertical lines for the data only */
- tab_box (tbl,
- -1, -1,
- -1, TAL_1,
- heading_columns, 0,
- n_cols - 1, n_rows - 1);
-
- /* Box around table */
- tab_box (tbl,
- TAL_2, TAL_2,
- -1, -1,
- 0, 0,
- n_cols - 1, n_rows - 1);
-
-
- tab_hline (tbl, TAL_2, 0, n_cols - 1, heading_rows);
-
- tab_vline (tbl, TAL_2, heading_columns, 0, n_rows - 1);
-
-
- tab_text (tbl, 0, heading_rows, TAB_LEFT | TAT_TITLE,
- _("Cases"));
-
- tab_text (tbl, 1, heading_rows, TAB_LEFT | TAT_TITLE,
- _("Valid"));
-
- tab_text (tbl, 1, heading_rows + 1, TAB_LEFT | TAT_TITLE,
- _("Excluded"));
-
- tab_text (tbl, 1, heading_rows + 2, TAB_LEFT | TAT_TITLE,
- _("Total"));
-
- tab_text (tbl, heading_columns, 0, TAB_CENTER | TAT_TITLE,
- _("N"));
-
- tab_text (tbl, heading_columns + 1, 0, TAB_CENTER | TAT_TITLE, _("%"));
-
- total = n_missing + n_valid;
+ struct pivot_table *table = pivot_table_create (
+ N_("Case Processing Summary"));
+ pivot_table_set_weight_var (table, dict_get_weight (dict));
- tab_double (tbl, 2, heading_rows, TAB_RIGHT,
- n_valid, NULL, RC_WEIGHT);
+ pivot_dimension_create (table, PIVOT_AXIS_COLUMN, N_("Statistics"),
+ N_("N"), PIVOT_RC_COUNT,
+ N_("Percent"), PIVOT_RC_PERCENT);
+ struct pivot_dimension *cases = pivot_dimension_create (
+ table, PIVOT_AXIS_ROW, N_("Cases"), N_("Valid"), N_("Excluded"),
+ N_("Total"));
+ cases->root->show_label = true;
- tab_double (tbl, 2, heading_rows + 1, TAB_RIGHT,
- n_missing, NULL, RC_WEIGHT);
+ casenumber total = n_missing + n_valid;
+ struct entry
+ {
+ int stat_idx;
+ int case_idx;
+ double x;
+ }
+ entries[] = {
+ { 0, 0, n_valid },
+ { 0, 1, n_missing },
+ { 0, 2, total },
+ { 1, 0, 100.0 * n_valid / total },
+ { 1, 1, 100.0 * n_missing / total },
+ { 1, 2, 100.0 }
+ };
- tab_double (tbl, 2, heading_rows + 2, TAB_RIGHT,
- total, NULL, RC_WEIGHT);
-
-
- tab_double (tbl, 3, heading_rows, TAB_RIGHT,
- 100 * n_valid / (double) total, NULL, RC_OTHER);
-
-
- tab_double (tbl, 3, heading_rows + 1, TAB_RIGHT,
- 100 * n_missing / (double) total, NULL, RC_OTHER);
-
-
- tab_double (tbl, 3, heading_rows + 2, TAB_RIGHT,
- 100 * total / (double) total, NULL, RC_OTHER);
-
+ for (size_t i = 0; i < sizeof entries / sizeof *entries; i++)
+ {
+ const struct entry *e = &entries[i];
+ pivot_table_put2 (table, e->stat_idx, e->case_idx,
+ pivot_value_new_number (e->x));
+ }
- tab_submit (tbl);
+ pivot_table_submit (table);
}
-
-
static void
reliability_summary_total (const struct reliability *rel)
{
- int i;
- const int n_cols = 5;
- const int heading_columns = 1;
- const int heading_rows = 1;
- const int n_rows = rel->sc[0].n_items + heading_rows ;
- const struct variable *wv = rel->wv;
- const struct fmt_spec *wfmt = wv ? var_get_print_format (wv) : & F_8_0;
- struct tab_table *tbl = tab_create (n_cols, n_rows);
- tab_set_format (tbl, RC_WEIGHT, wfmt);
- tab_headers (tbl, heading_columns, 0, heading_rows, 0);
-
- tab_title (tbl, _("Item-Total Statistics"));
-
- /* Vertical lines for the data only */
- tab_box (tbl,
- -1, -1,
- -1, TAL_1,
- heading_columns, 0,
- n_cols - 1, n_rows - 1);
-
- /* Box around table */
- tab_box (tbl,
- TAL_2, TAL_2,
- -1, -1,
- 0, 0,
- n_cols - 1, n_rows - 1);
-
+ struct pivot_table *table = pivot_table_create (N_("Item-Total Statistics"));
- tab_hline (tbl, TAL_2, 0, n_cols - 1, heading_rows);
+ pivot_dimension_create (table, PIVOT_AXIS_COLUMN, N_("Statistics"),
+ N_("Scale Mean if Item Deleted"),
+ N_("Scale Variance if Item Deleted"),
+ N_("Corrected Item-Total Correlation"),
+ N_("Cronbach's Alpha if Item Deleted"));
- tab_vline (tbl, TAL_2, heading_columns, 0, n_rows - 1);
+ struct pivot_dimension *variables = pivot_dimension_create (
+ table, PIVOT_AXIS_ROW, N_("Variables"));
- tab_text (tbl, 1, 0, TAB_CENTER | TAT_TITLE,
- _("Scale Mean if Item Deleted"));
-
- tab_text (tbl, 2, 0, TAB_CENTER | TAT_TITLE,
- _("Scale Variance if Item Deleted"));
-
- tab_text (tbl, 3, 0, TAB_CENTER | TAT_TITLE,
- _("Corrected Item-Total Correlation"));
-
- tab_text (tbl, 4, 0, TAB_CENTER | TAT_TITLE,
- _("Cronbach's Alpha if Item Deleted"));
-
-
- for (i = 0 ; i < rel->sc[0].n_items; ++i)
+ for (size_t i = 0; i < rel->sc[0].n_items; ++i)
{
- double cov, item_to_total_r;
- double mean, weight, var;
-
const struct cronbach *s = &rel->sc[rel->total_start + i];
- tab_text (tbl, 0, heading_rows + i, TAB_LEFT| TAT_TITLE,
- var_to_string (rel->sc[0].items[i]));
- moments1_calculate (s->total, &weight, &mean, &var, 0, 0);
-
- tab_double (tbl, 1, heading_rows + i, TAB_RIGHT,
- mean, NULL, RC_OTHER);
-
- tab_double (tbl, 2, heading_rows + i, TAB_RIGHT,
- s->variance_of_sums, NULL, RC_OTHER);
-
- tab_double (tbl, 4, heading_rows + i, TAB_RIGHT,
- s->alpha, NULL, RC_OTHER);
-
-
- moments1_calculate (rel->sc[0].m[i], &weight, &mean, &var, 0,0);
- cov = rel->sc[0].variance_of_sums + var - s->variance_of_sums;
- cov /= 2.0;
-
- item_to_total_r = (cov - var) / (sqrt(var) * sqrt (s->variance_of_sums));
-
-
- tab_double (tbl, 3, heading_rows + i, TAB_RIGHT,
- item_to_total_r, NULL, RC_OTHER);
+ int var_idx = pivot_category_create_leaf (
+ variables->root, pivot_value_new_variable (rel->sc[0].items[i]));
+
+ double mean;
+ moments1_calculate (s->total, NULL, &mean, NULL, NULL, NULL);
+
+ double var;
+ moments1_calculate (rel->sc[0].m[i], NULL, NULL, &var, NULL, NULL);
+ double cov
+ = (rel->sc[0].variance_of_sums + var - s->variance_of_sums) / 2.0;
+
+ double entries[] = {
+ mean,
+ s->variance_of_sums,
+ (cov - var) / sqrt (var * s->variance_of_sums),
+ s->alpha,
+ };
+ for (size_t i = 0; i < sizeof entries / sizeof *entries; i++)
+ pivot_table_put2 (table, i, var_idx,
+ pivot_value_new_number (entries[i]));
}
-
- tab_submit (tbl);
+ pivot_table_submit (table);
}
-static void reliability_statistics_model_alpha (struct tab_table *tbl,
- const struct reliability *rel);
-
-static void reliability_statistics_model_split (struct tab_table *tbl,
- const struct reliability *rel);
-
-
-struct reliability_output_table
-{
- int n_cols;
- int n_rows;
- int heading_cols;
- int heading_rows;
- void (*populate) (struct tab_table *, const struct reliability *);
-};
-
-
-static struct reliability_output_table rol[2] =
- {
- { 2, 2, 1, 1, reliability_statistics_model_alpha},
- { 4, 9, 3, 0, reliability_statistics_model_split}
- };
-
static void
reliability_statistics (const struct reliability *rel)
{
- int n_cols = rol[rel->model].n_cols;
- int n_rows = rol[rel->model].n_rows;
- int heading_columns = rol[rel->model].heading_cols;
- int heading_rows = rol[rel->model].heading_rows;
- const struct variable *wv = rel->wv;
- const struct fmt_spec *wfmt = wv ? var_get_print_format (wv) : & F_8_0;
- struct tab_table *tbl = tab_create (n_cols, n_rows);
- tab_set_format (tbl, RC_WEIGHT, wfmt);
-
- tab_headers (tbl, heading_columns, 0, heading_rows, 0);
-
- tab_title (tbl, _("Reliability Statistics"));
-
- /* Vertical lines for the data only */
- tab_box (tbl,
- -1, -1,
- -1, TAL_1,
- heading_columns, 0,
- n_cols - 1, n_rows - 1);
-
- /* Box around table */
- tab_box (tbl,
- TAL_2, TAL_2,
- -1, -1,
- 0, 0,
- n_cols - 1, n_rows - 1);
-
-
- tab_hline (tbl, TAL_2, 0, n_cols - 1, heading_rows);
+ struct pivot_table *table = pivot_table_create (
+ N_("Reliability Statistics"));
+ pivot_table_set_weight_var (table, rel->wv);
- tab_vline (tbl, TAL_2, heading_columns, 0, n_rows - 1);
-
- if ( rel->model == MODEL_ALPHA )
- reliability_statistics_model_alpha (tbl, rel);
- else if (rel->model == MODEL_SPLIT )
- reliability_statistics_model_split (tbl, rel);
-
- tab_submit (tbl);
-}
-
-
-static void
-reliability_statistics_model_alpha (struct tab_table *tbl,
- const struct reliability *rel)
-{
- const struct cronbach *s = &rel->sc[0];
-
- tab_text (tbl, 0, 0, TAB_CENTER | TAT_TITLE,
- _("Cronbach's Alpha"));
-
- tab_text (tbl, 1, 0, TAB_CENTER | TAT_TITLE,
- _("N of Items"));
-
- tab_double (tbl, 0, 1, TAB_RIGHT, s->alpha, NULL, RC_OTHER);
-
- tab_double (tbl, 1, 1, TAB_RIGHT, s->n_items, NULL, RC_WEIGHT);
-}
-
-
-static void
-reliability_statistics_model_split (struct tab_table *tbl,
- const struct reliability *rel)
-{
- tab_text (tbl, 0, 0, TAB_LEFT,
- _("Cronbach's Alpha"));
-
- tab_text (tbl, 1, 0, TAB_LEFT,
- _("Part 1"));
-
- tab_text (tbl, 2, 0, TAB_LEFT,
- _("Value"));
-
- tab_text (tbl, 2, 1, TAB_LEFT,
- _("N of Items"));
-
- tab_text (tbl, 1, 2, TAB_LEFT,
- _("Part 2"));
-
- tab_text (tbl, 2, 2, TAB_LEFT,
- _("Value"));
-
- tab_text (tbl, 2, 3, TAB_LEFT,
- _("N of Items"));
-
- tab_text (tbl, 1, 4, TAB_LEFT,
- _("Total N of Items"));
-
- tab_text (tbl, 0, 5, TAB_LEFT,
- _("Correlation Between Forms"));
-
- tab_text (tbl, 0, 6, TAB_LEFT,
- _("Spearman-Brown Coefficient"));
-
- tab_text (tbl, 1, 6, TAB_LEFT,
- _("Equal Length"));
-
- tab_text (tbl, 1, 7, TAB_LEFT,
- _("Unequal Length"));
-
-
- tab_text (tbl, 0, 8, TAB_LEFT,
- _("Guttman Split-Half Coefficient"));
-
-
-
- tab_double (tbl, 3, 0, TAB_RIGHT, rel->sc[1].alpha, NULL, RC_OTHER);
- tab_double (tbl, 3, 2, TAB_RIGHT, rel->sc[2].alpha, NULL, RC_OTHER);
-
- tab_double (tbl, 3, 1, TAB_RIGHT, rel->sc[1].n_items, NULL, RC_WEIGHT);
- tab_double (tbl, 3, 3, TAB_RIGHT, rel->sc[2].n_items, NULL, RC_WEIGHT);
-
- tab_double (tbl, 3, 4, TAB_RIGHT,
- rel->sc[1].n_items + rel->sc[2].n_items, NULL, RC_WEIGHT);
-
- {
- /* R is the correlation between the two parts */
- double r = rel->sc[0].variance_of_sums -
- rel->sc[1].variance_of_sums -
- rel->sc[2].variance_of_sums ;
-
- /* Guttman Split Half Coefficient */
- double g = 2 * r / rel->sc[0].variance_of_sums;
-
- /* Unequal Length Spearman Brown Coefficient, and
- intermediate value used in the computation thereof */
- double uly, tmp;
-
- r /= sqrt (rel->sc[1].variance_of_sums);
- r /= sqrt (rel->sc[2].variance_of_sums);
- r /= 2.0;
-
- tab_double (tbl, 3, 5, TAB_RIGHT, r, NULL, RC_OTHER);
-
- /* Equal length Spearman-Brown Coefficient */
- tab_double (tbl, 3, 6, TAB_RIGHT, 2 * r / (1.0 + r), NULL, RC_OTHER);
-
- tab_double (tbl, 3, 8, TAB_RIGHT, g, NULL, RC_OTHER);
-
- tmp = (1.0 - r*r) * rel->sc[1].n_items * rel->sc[2].n_items /
- pow2 (rel->sc[0].n_items);
-
- uly = sqrt( pow4 (r) + 4 * pow2 (r) * tmp);
- uly -= pow2 (r);
- uly /= 2 * tmp;
+ if (rel->model == MODEL_ALPHA)
+ {
+ pivot_dimension_create (table, PIVOT_AXIS_COLUMN,
+ N_("Statistics"),
+ N_("Cronbach's Alpha"), PIVOT_RC_OTHER,
+ N_("N of Items"), PIVOT_RC_COUNT);
+
+ const struct cronbach *s = &rel->sc[0];
+ pivot_table_put1 (table, 0, pivot_value_new_number (s->alpha));
+ pivot_table_put1 (table, 1, pivot_value_new_number (s->n_items));
+ }
+ else
+ {
+ struct pivot_dimension *statistics = pivot_dimension_create (
+ table, PIVOT_AXIS_ROW, N_("Statistics"));
+ struct pivot_category *alpha = pivot_category_create_group (
+ statistics->root, N_("Cronbach's Alpha"));
+ pivot_category_create_group (alpha, N_("Part 1"),
+ N_("Value"), PIVOT_RC_OTHER,
+ N_("N of Items"), PIVOT_RC_COUNT);
+ pivot_category_create_group (alpha, N_("Part 2"),
+ N_("Value"), PIVOT_RC_OTHER,
+ N_("N of Items"), PIVOT_RC_COUNT);
+ pivot_category_create_leaves (alpha,
+ N_("Total N of Items"), PIVOT_RC_COUNT);
+ pivot_category_create_leaves (statistics->root,
+ N_("Correlation Between Forms"),
+ PIVOT_RC_OTHER);
+ pivot_category_create_group (statistics->root,
+ N_("Spearman-Brown Coefficient"),
+ N_("Equal Length"), PIVOT_RC_OTHER,
+ N_("Unequal Length"), PIVOT_RC_OTHER);
+ pivot_category_create_leaves (statistics->root,
+ N_("Guttman Split-Half Coefficient"),
+ PIVOT_RC_OTHER);
+
+ /* R is the correlation between the two parts */
+ double r0 = rel->sc[0].variance_of_sums -
+ rel->sc[1].variance_of_sums -
+ rel->sc[2].variance_of_sums;
+ double r1 = (r0 / sqrt (rel->sc[1].variance_of_sums)
+ / sqrt (rel->sc[2].variance_of_sums)
+ / 2.0);
+
+ /* Guttman Split Half Coefficient */
+ double g = 2 * r0 / rel->sc[0].variance_of_sums;
+
+ double tmp = (1.0 - r1*r1) * rel->sc[1].n_items * rel->sc[2].n_items /
+ pow2 (rel->sc[0].n_items);
+
+ double entries[] = {
+ rel->sc[1].alpha,
+ rel->sc[1].n_items,
+ rel->sc[2].alpha,
+ rel->sc[2].n_items,
+ rel->sc[1].n_items + rel->sc[2].n_items,
+ r1,
+ 2 * r1 / (1.0 + r1),
+ (sqrt (pow4 (r1) + 4 * pow2 (r1) * tmp) - pow2 (r1)) / (2 * tmp),
+ g,
+ };
+ for (size_t i = 0; i < sizeof entries / sizeof *entries; i++)
+ pivot_table_put1 (table, i, pivot_value_new_number (entries[i]));
+ }
- tab_double (tbl, 3, 7, TAB_RIGHT, uly, NULL, RC_OTHER);
- }
+ pivot_table_submit (table);
}
-